EP3911740A1 - Isoprenoids and methods of making thereof - Google Patents
Isoprenoids and methods of making thereofInfo
- Publication number
- EP3911740A1 EP3911740A1 EP20741921.9A EP20741921A EP3911740A1 EP 3911740 A1 EP3911740 A1 EP 3911740A1 EP 20741921 A EP20741921 A EP 20741921A EP 3911740 A1 EP3911740 A1 EP 3911740A1
- Authority
- EP
- European Patent Office
- Prior art keywords
- kinase
- alkyl
- alkylene
- kinases
- membered
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Pending
Links
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- HNJBEVLQSNELDL-YZRHJBSPSA-N pyrrolidin-2-one Chemical group O=C1CC[14CH2]N1 HNJBEVLQSNELDL-YZRHJBSPSA-N 0.000 description 1
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- 229920002477 rna polymer Polymers 0.000 description 1
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- 102220223196 rs146238336 Human genes 0.000 description 1
- 229930006696 sabinene Natural products 0.000 description 1
- 229930195734 saturated hydrocarbon Natural products 0.000 description 1
- RVEBOCQEYQSGBC-DRBFJGFPSA-N schisanlactone H Natural products COC(=O)CC[C@@]1(C)[C@@H](CC[C@@H]2C1=CC[C@]3(C)[C@H](CC[C@@]23C)[C@H](C)[C@H]4CC=C(C)C(=O)O4)C(C)(C)O RVEBOCQEYQSGBC-DRBFJGFPSA-N 0.000 description 1
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- ODZPKZBBUMBTMG-UHFFFAOYSA-N sodium amide Chemical compound [NH2-].[Na+] ODZPKZBBUMBTMG-UHFFFAOYSA-N 0.000 description 1
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- JCAUJYDMKVQHHG-UHFFFAOYSA-N stylosin Natural products C1=C(O)C(OC)=CC(C(=O)OC2C3(C)CCC(C3)C2(C)C)=C1 JCAUJYDMKVQHHG-UHFFFAOYSA-N 0.000 description 1
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- 125000004434 sulfur atom Chemical group 0.000 description 1
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- FRXDKKVUQWMISA-TUFLPTIASA-N syreiteate A Natural products CC(C)[C@@H]1[C@H](O)[C@@H](O)C(=C)CCC=C(/C)C[C@@H]1OC(=O)c2ccc(O)cc2 FRXDKKVUQWMISA-TUFLPTIASA-N 0.000 description 1
- 239000011975 tartaric acid Substances 0.000 description 1
- 235000002906 tartaric acid Nutrition 0.000 description 1
- 125000003718 tetrahydrofuranyl group Chemical group 0.000 description 1
- NQRYJNQNLNOLGT-UHFFFAOYSA-N tetrahydropyridine hydrochloride Natural products C1CCNCC1 NQRYJNQNLNOLGT-UHFFFAOYSA-N 0.000 description 1
- 125000005958 tetrahydrothienyl group Chemical group 0.000 description 1
- 125000003831 tetrazolyl group Chemical group 0.000 description 1
- 125000001984 thiazolidinyl group Chemical group 0.000 description 1
- 125000000335 thiazolyl group Chemical group 0.000 description 1
- 238000004809 thin layer chromatography Methods 0.000 description 1
- 210000001519 tissue Anatomy 0.000 description 1
- XJPBRODHZKDRCB-UHFFFAOYSA-N trans-alpha-ocimene Natural products CC(=C)CCC=C(C)C=C XJPBRODHZKDRCB-UHFFFAOYSA-N 0.000 description 1
- 238000000844 transformation Methods 0.000 description 1
- 125000004306 triazinyl group Chemical group 0.000 description 1
- 150000005691 triesters Chemical class 0.000 description 1
- 125000000876 trifluoromethoxy group Chemical group FC(F)(F)O* 0.000 description 1
- 125000000026 trimethylsilyl group Chemical group [H]C([H])([H])[Si]([*])(C([H])([H])[H])C([H])([H])[H] 0.000 description 1
- 150000003648 triterpenes Chemical class 0.000 description 1
- 238000010798 ubiquitination Methods 0.000 description 1
- 230000034512 ubiquitination Effects 0.000 description 1
- 229930000034 vetispiradiene Natural products 0.000 description 1
- WEZDOYDDKIHCLM-GNXJLENFSA-N vetispiradiene Chemical compound C[C@@H]1CCC=C(C)C11C[C@@H](C(C)=C)CC1 WEZDOYDDKIHCLM-GNXJLENFSA-N 0.000 description 1
- 230000035899 viability Effects 0.000 description 1
- 125000000391 vinyl group Chemical group [H]C([*])=C([H])[H] 0.000 description 1
- 238000011179 visual inspection Methods 0.000 description 1
- 229940088594 vitamin Drugs 0.000 description 1
- 229930003231 vitamin Natural products 0.000 description 1
- 235000013343 vitamin Nutrition 0.000 description 1
- 239000011782 vitamin Substances 0.000 description 1
- 239000002699 waste material Substances 0.000 description 1
- GKMFOEIZCLMZDE-QXKUPLGCSA-N zaluzanin D Chemical compound C([C@@H](C1=C)OC(=O)C)[C@@H]2[C@H]1[C@H]1OC(=O)C(=C)[C@@H]1CCC2=C GKMFOEIZCLMZDE-QXKUPLGCSA-N 0.000 description 1
- 235000010930 zeaxanthin Nutrition 0.000 description 1
- 239000001775 zeaxanthin Substances 0.000 description 1
- 229940043269 zeaxanthin Drugs 0.000 description 1
- PDEQKAVEYSOLJX-YHYXMXQVSA-N α-santal-10-en-12-ol Chemical compound C1C2C3(C)C2CC1C3(C)CC/C=C(CO)/C PDEQKAVEYSOLJX-YHYXMXQVSA-N 0.000 description 1
- KWFJIXPIFLVMPM-UHFFFAOYSA-N α-santalene Chemical compound C1C2C3(C)C2CC1C3(C)CCC=C(C)C KWFJIXPIFLVMPM-UHFFFAOYSA-N 0.000 description 1
- OENHQHLEOONYIE-JLTXGRSLSA-N β-Carotene Chemical compound CC=1CCCC(C)(C)C=1\C=C\C(\C)=C\C=C\C(\C)=C\C=C\C=C(/C)\C=C\C=C(/C)\C=C\C1=C(C)CCCC1(C)C OENHQHLEOONYIE-JLTXGRSLSA-N 0.000 description 1
- YKFLAYDHMOASIY-UHFFFAOYSA-N γ-terpinene Chemical compound CC(C)C1=CCC(C)=CC1 YKFLAYDHMOASIY-UHFFFAOYSA-N 0.000 description 1
Classifications
-
- C—CHEMISTRY; METALLURGY
- C12—BIOCHEMISTRY; BEER; SPIRITS; WINE; VINEGAR; MICROBIOLOGY; ENZYMOLOGY; MUTATION OR GENETIC ENGINEERING
- C12N—MICROORGANISMS OR ENZYMES; COMPOSITIONS THEREOF; PROPAGATING, PRESERVING, OR MAINTAINING MICROORGANISMS; MUTATION OR GENETIC ENGINEERING; CULTURE MEDIA
- C12N9/00—Enzymes; Proenzymes; Compositions thereof; Processes for preparing, activating, inhibiting, separating or purifying enzymes
- C12N9/10—Transferases (2.)
- C12N9/1085—Transferases (2.) transferring alkyl or aryl groups other than methyl groups (2.5)
-
- C—CHEMISTRY; METALLURGY
- C07—ORGANIC CHEMISTRY
- C07D—HETEROCYCLIC COMPOUNDS
- C07D403/00—Heterocyclic compounds containing two or more hetero rings, having nitrogen atoms as the only ring hetero atoms, not provided for by group C07D401/00
- C07D403/02—Heterocyclic compounds containing two or more hetero rings, having nitrogen atoms as the only ring hetero atoms, not provided for by group C07D401/00 containing two hetero rings
- C07D403/06—Heterocyclic compounds containing two or more hetero rings, having nitrogen atoms as the only ring hetero atoms, not provided for by group C07D401/00 containing two hetero rings linked by a carbon chain containing only aliphatic carbon atoms
-
- C—CHEMISTRY; METALLURGY
- C07—ORGANIC CHEMISTRY
- C07D—HETEROCYCLIC COMPOUNDS
- C07D209/00—Heterocyclic compounds containing five-membered rings, condensed with other rings, with one nitrogen atom as the only ring hetero atom
- C07D209/02—Heterocyclic compounds containing five-membered rings, condensed with other rings, with one nitrogen atom as the only ring hetero atom condensed with one carbocyclic ring
- C07D209/04—Indoles; Hydrogenated indoles
- C07D209/10—Indoles; Hydrogenated indoles with substituted hydrocarbon radicals attached to carbon atoms of the hetero ring
- C07D209/18—Radicals substituted by carbon atoms having three bonds to hetero atoms with at the most one bond to halogen, e.g. ester or nitrile radicals
- C07D209/20—Radicals substituted by carbon atoms having three bonds to hetero atoms with at the most one bond to halogen, e.g. ester or nitrile radicals substituted additionally by nitrogen atoms, e.g. tryptophane
-
- C—CHEMISTRY; METALLURGY
- C07—ORGANIC CHEMISTRY
- C07D—HETEROCYCLIC COMPOUNDS
- C07D401/00—Heterocyclic compounds containing two or more hetero rings, having nitrogen atoms as the only ring hetero atoms, at least one ring being a six-membered ring with only one nitrogen atom
- C07D401/14—Heterocyclic compounds containing two or more hetero rings, having nitrogen atoms as the only ring hetero atoms, at least one ring being a six-membered ring with only one nitrogen atom containing three or more hetero rings
-
- C—CHEMISTRY; METALLURGY
- C07—ORGANIC CHEMISTRY
- C07D—HETEROCYCLIC COMPOUNDS
- C07D403/00—Heterocyclic compounds containing two or more hetero rings, having nitrogen atoms as the only ring hetero atoms, not provided for by group C07D401/00
- C07D403/14—Heterocyclic compounds containing two or more hetero rings, having nitrogen atoms as the only ring hetero atoms, not provided for by group C07D401/00 containing three or more hetero rings
-
- C—CHEMISTRY; METALLURGY
- C07—ORGANIC CHEMISTRY
- C07D—HETEROCYCLIC COMPOUNDS
- C07D405/00—Heterocyclic compounds containing both one or more hetero rings having oxygen atoms as the only ring hetero atoms, and one or more rings having nitrogen as the only ring hetero atom
- C07D405/14—Heterocyclic compounds containing both one or more hetero rings having oxygen atoms as the only ring hetero atoms, and one or more rings having nitrogen as the only ring hetero atom containing three or more hetero rings
-
- C—CHEMISTRY; METALLURGY
- C07—ORGANIC CHEMISTRY
- C07D—HETEROCYCLIC COMPOUNDS
- C07D409/00—Heterocyclic compounds containing two or more hetero rings, at least one ring having sulfur atoms as the only ring hetero atoms
- C07D409/14—Heterocyclic compounds containing two or more hetero rings, at least one ring having sulfur atoms as the only ring hetero atoms containing three or more hetero rings
-
- C—CHEMISTRY; METALLURGY
- C12—BIOCHEMISTRY; BEER; SPIRITS; WINE; VINEGAR; MICROBIOLOGY; ENZYMOLOGY; MUTATION OR GENETIC ENGINEERING
- C12N—MICROORGANISMS OR ENZYMES; COMPOSITIONS THEREOF; PROPAGATING, PRESERVING, OR MAINTAINING MICROORGANISMS; MUTATION OR GENETIC ENGINEERING; CULTURE MEDIA
- C12N15/00—Mutation or genetic engineering; DNA or RNA concerning genetic engineering, vectors, e.g. plasmids, or their isolation, preparation or purification; Use of hosts therefor
- C12N15/09—Recombinant DNA-technology
- C12N15/11—DNA or RNA fragments; Modified forms thereof; Non-coding nucleic acids having a biological activity
- C12N15/52—Genes encoding for enzymes or proenzymes
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- C—CHEMISTRY; METALLURGY
- C12—BIOCHEMISTRY; BEER; SPIRITS; WINE; VINEGAR; MICROBIOLOGY; ENZYMOLOGY; MUTATION OR GENETIC ENGINEERING
- C12P—FERMENTATION OR ENZYME-USING PROCESSES TO SYNTHESISE A DESIRED CHEMICAL COMPOUND OR COMPOSITION OR TO SEPARATE OPTICAL ISOMERS FROM A RACEMIC MIXTURE
- C12P17/00—Preparation of heterocyclic carbon compounds with only O, N, S, Se or Te as ring hetero atoms
- C12P17/16—Preparation of heterocyclic carbon compounds with only O, N, S, Se or Te as ring hetero atoms containing two or more hetero rings
- C12P17/165—Heterorings having nitrogen atoms as the only ring heteroatoms
-
- C—CHEMISTRY; METALLURGY
- C12—BIOCHEMISTRY; BEER; SPIRITS; WINE; VINEGAR; MICROBIOLOGY; ENZYMOLOGY; MUTATION OR GENETIC ENGINEERING
- C12P—FERMENTATION OR ENZYME-USING PROCESSES TO SYNTHESISE A DESIRED CHEMICAL COMPOUND OR COMPOSITION OR TO SEPARATE OPTICAL ISOMERS FROM A RACEMIC MIXTURE
- C12P5/00—Preparation of hydrocarbons or halogenated hydrocarbons
- C12P5/02—Preparation of hydrocarbons or halogenated hydrocarbons acyclic
Definitions
- Isoprenoids comprise >55,000 natural products for which methods to access and diversify their structures are in high demand.
- the isoprene motif plays a critical role in modulating the biological activity of isoprenoids, determines their utility as tools to study and treat human diseases, and provides the basis to develop new fuels and chemicals.
- the ability to diversify isoprenoids is extremely limited largely due to critical limitations imposed by native isoprenoid biosynthesis.
- a potential strategy for hemiterpene biosynthesis can start with an alcohol (e.g., isopentenol (ISO) and/or dimethylallyl alcohol (DMAA)), which can be converted to a pyrophosphate (diphosphate) via stepwise enzymatically catalyzed phosphorylation (see, for example, Figure 15B).
- an alcohol e.g., isopentenol (ISO) and/or dimethylallyl alcohol (DMAA)
- ISO isopentenol
- DMAA dimethylallyl alcohol
- Alcohol-dependent hemiterpene (ADH) pathways can employ two independent kinases (a first kinase and a second kinase), a phosphatase that exhibits bidirectional activity and a kinase, or a single enzyme that can catalyze both a first phosphorylation and a second phosphorylation of the primary alcohol (e.g., a phosphotransferase).
- ADH alcohol-dependent hemiterpene
- these artificial pathways designed bottom-up as a replacement for natural hemiterpene biosynthesis can leverage naturally or engineered promiscuous enzymes that enable a broad panel of easily scalable and accessible alcohols to be converted to the corresponding diphosphate.
- These diphosphates can then be introduced into downstream natural or artificial isoprenoid biosynthetic pathways.
- isoprenoids can be biosynthetically prepared, including isoprenoids that cannot be readily prepared using conventional synthetic means.
- methods for synthesizing an isoprenoid subunit can comprise (i) contacting a primary alcohol defined by Formula I below
- R 1 is selected from the group consisting of Ci-io alkyl, CHO heteroalkyl, C2-10 alkenyl, C2-10 heteroalkenyl, C2-10 alkynyl, C2-10 heteroalkynyl, C3-10 cycloalkyl, 6-10 membered aryl, 5-10 membered heteroaryl, 4-10 membered heterocycloalkyl, C3-10 cycloalkyl-Ci-4 alkylene, C3-io cycloalkyl-Ci-4heteroalkylene, 4-10 membered
- R 1 is selected from the group consisting of hydrogen, Ci-10 alkyl, Ci-10 heteroalkyl, C2-10 alkenyl, C2-10 heteroalkenyl, C2-10 alkynyl, C2-10 heteroalkynyl, C3-10 cycloalkyl, 6-10 membered aryl, 5-10 membered heteroaryl, 4-10 membered heterocycloalkyl, C3-10 cycloalkyl-C 1-4 alkylene, C3-io cycloalkyl-Ci-4 alkylene, C3-io cycloalkyl-Ci
- heterocycloalkyl-C 1-4 alkylene 4-10 membered heterocycloalkyl-C 1-4 heteroalkylene, 6- 10 membered aryl-C 1-4 alkylene, 6-10 membered aryl-C 1-4 heteroalky lene, 5-10 membered heteroaryl-Ci-4 alkylene, and 5-10 membered heteroaryl-Ci-4heteroalkylene, each optionally substituted with 1, 2, 3, or 4 independently selected R x groups; and each R x , when present, is independently selected from OH, NO2, CN, halo, Ci- 6 alkyl, C2-6 alkenyl, C2-6 alkynyl, C M haloalkyl, Ci- 6 alkoxy, Ci- 6 haloalkoxy, cyano-Ci-3 alkyl, HO- C1-3 alkyl, amino, Ci- 6 alkylamino, di(Ci- 6 alkyl)amino, thio, Ci- 6 alkylthi
- R 1 , R 1 , and R x are as defined above with respect to Formula I and P represents a phosphate group; and (ii) contacting the phosphate defined by Formula II with a kinase in the presence of ATP to generate the isoprenoid subunit defined by Formula III below
- R 1 , R 1 , and R x are as defined above with respect to Formula I and PP represents a pyrophosphate group.
- the phosphatase can comprise a non-specific acid phosphatase. In certain embodiments, the phosphatase can comprise PhoN.
- the kinase can comprise a kinase that uses a phosphate acceptor.
- the kinase can be chosen from a polyphosphate kinase, a phosphomevalonate kinase, a phosphomethylpryimidine kinase, a famesyl-diphosphate kinase, or a combination thereof.
- the kinase can comprise isopentenyl phosphate kinase (IPK).
- IPK isopentenyl phosphate kinase
- the phosphatase, the kinase, or a combination thereof can comprise a mutant enzyme engineered to increase substrate promiscuity , improve enzyme activity, increase enzyme specificity with respect to a particular substrate, or a combination thereof.
- the primary alcohol defined by Formula I is not one of the following
- steps (i) and (ii) can be performed in a cell-free system.
- the method can further comprise recovering the isoprenoid subunit from the cell-free system.
- steps (i) and (ii) can be performed in a cell comprising genes encoding for the phosphatase that exhibits bidirectional activity and the kinase.
- the cell can be engineered to express (or overexpress) the genes encoding for the phosphatase and the kinase.
- Methods can further comprise introducing the isoprenoid subunit into a natural or artificial isoprenoid biosynthetic pathway to synthesize an isoprenoid. This can be performed within a cell or in a cell-free system.
- Also provided are methods for synthesizing an isoprenoid subunit that comprise (i) providing a cell comprising genes encoding for (1) a phosphatase that exhibits bidirectional activity, and (2) a kinase; and (ii) incubating the cell in a fermentation broth with ATP and a primary alcohol defined by Formula I below
- R 1 is selected from the group consisting of Ci-io alkyl, C HO heteroalkyl, C 2-10 alkenyl, C 2-10 heteroalkenyl, C 2-10 alkynyl, C 2-10 heteroalkynyl, C 3-10 cycloalkyl, 6-10 membered aryl, 5-10 membered heteroaryl, 4-10 membered heterocycloalkyl, C 3-10 cycloalkyl-Ci- 4 alkylene, C 3-i o cycloalkyl-Ci- 4 heteroalkylene, 4-10 membered heterocycloalkyl-Ci- 4 alkylene, 4-10 membered heterocycloalkyl-C 1-4 heteroalky lene, 6- 10 membered aryl-Ci- 4 alkylene, 6-10 membered aryl-C 1-4 heteroalky lene, 5-10 membered heteroaryl-Ci- 4 alkylene, and 5-10 membered heteroaryl-Ci- 4 heteroalkylene,
- the phosphatase can comprise a non-specific acid phosphatase. In certain embodiments, the phosphatase can comprise PhoN.
- the kinase can comprise a kinase that uses a phosphate acceptor.
- the kinase can be chosen from a polyphosphate kinase, a phosphomevalonate kinase, a phosphomethylpryimidine kinase, a famesyl-diphosphate kinase, or a combination thereof.
- the kinase can comprise isopentenyl phosphate kinase (IPK).
- IPK isopentenyl phosphate kinase
- the phosphatase, the kinase, or a combination thereof can comprise a mutant enzyme engineered to increase substrate promiscuity , improve enzyme activity, increase enzyme specificity with respect to a particular substrate, or a combination thereof.
- the primary alcohol defined by Formula I is not one of the following
- Methods can further compriseintroducing the isoprenoid subunit into a natural or artificial isoprenoid biosynthetic pathway to synthesize an isoprenoid, and isolating the resulting isoprenoid.
- Also provided are methods for synthesizing an isoprenoid subunit that comprise (i) contacting a primary alcohol defined by Formula I below
- R 1 is selected from the group consisting of Ci-io alkyl, CHO heteroalkyl, C2-10 alkenyl, C2-10 heteroalkenyl, C2-10 alkynyl, C2-10 heteroalkynyl, C3-10 cycloalkyl, 6-10 membered aryl, 5-10 membered heteroaryl, 4-10 membered heterocycloalkyl, C3-10 cycloalkyl-Ci-4 alkylene, C3-io cycloalkyl-Ci-4heteroalkylene, 4-10 membered
- R 1 is selected from the group consisting of hydrogen, Ci-10 alkyl, Ci-10 heteroalkyl, C2-10 alkenyl, C2-10 heteroalkenyl, C2-10 alkynyl, C2-10 heteroalkynyl, C3-10 cycloalkyl, 6-10 membered aryl, 5-10 membered heteroaryl, 4-10 membered heterocycloalkyl, C3-10 cycloalkyl-C 1-4 alkylene, C3-io cycloalkyl-Ci-4 alkylene, C3-io cycloalkyl-Ci
- heterocycloalkyl-C 1-4 alkylene 4-10 membered heterocycloalkyl-C 1-4 heteroalkylene, 6- 10 membered aryl-C 1-4 alkylene, 6-10 membered aryl-C 1-4 heteroalky lene, 5-10 membered heteroaryl-Ci-4 alkylene, and 5-10 membered heteroaryl-Ci-4heteroalkylene, each optionally substituted with 1, 2, 3, or 4 independently selected R x groups; and each R x , when present, is independently selected from OH, NO2, CN, halo, Ci- 6 alkyl, C2-6 alkenyl, C2-6 alkynyl, C M haloalkyl, Ci- 6 alkoxy, Ci- 6 haloalkoxy, cyano-Ci-3 alkyl, HO- C1-3 alkyl, amino, Ci- 6 alkylamino, di(Ci- 6 alkyl)amino, thio, Ci- 6 alkylthi
- R 1 , R 1 , and R x are as defined above with respect to Formula I and P represents a phosphate group; and (ii) contacting the phosphate defined by Formula II with a second kinase in the presence of ATP to generate the isoprenoid subunit defined by Formula III below
- R 1 , R 1 , and R x are as defined above with respect to Formula I and PP represents a pyrophosphate group.
- the first kinase can comprise a kinase that uses an alcohol acceptor.
- the first kinase can be chosen from a hexokinase, a glucokinase, a galactokinase, a fmctokinase, a glycerol kinase, a choline kinase, a pantetheine kinase, a mevalonate kinase, a pyruvate kinase, an undecaprenol kinase, an ethanolamine kinase, a diacylglycerol kinase, a dolichol kinase, a macrolide 2’ -kinase, a ceramide kinase, or a combination thereof.
- the second kinase can comprise a kinase that uses a phosphate acceptor.
- the second kinase can be chosen from a polyphosphate kinase, a phosphomevalonate kinase, a phosphomethylpyrimidine kinase, a farnesyl- diphosphate kinase, or a combination thereof.
- the second kinase can comprise isopentenyl phosphate kinase (IPK).
- the first kinase, the second kinase, or a combination thereof comprise a mutant enzyme engineered to increase substrate promiscuity, improve enzyme activity, increase enzyme specificity with respect to a particular substrate, or a combination thereof.
- steps (i) and (ii) can be performed in a cell-free system.
- the method can further comprise recovering the isoprenoid subunit from the cell-free system.
- steps (i) and (ii) can be performed in a cell comprising genes encoding for the first kinase and the second kinase.
- the cell can be engineered to express (or overexpress) the genes encoding for the first kinase and/or the second kinase.
- Methods can further comprise introducing the isoprenoid subunit into a natural or artificial isoprenoid biosynthetic pathway to synthesize an isoprenoid. This can be done performed within a cell or in a cell-free system.
- Also provided are methods for synthesizing an isoprenoid subunit that comprise (i) providing a cell comprising genes encoding for a first kinase and a second kinase; (ii) incubating the cell in a fermentation broth with ATP and a primary alcohol defined by Formula I below
- R 1 is selected from the group consisting of Ci-io alkyl, CHO heteroalkyl, C 2-10 alkenyl, C 2-10 heteroalkenyl, C 2-10 alkynyl, C 2-10 heteroalkynyl, C 3-10 cycloalkyl, 6-10 membered aryl, 5-10 membered heteroaryl, 4-10 membered heterocycloalkyl, C 3-10 cycloalkyl-Ci- 4 alkylene, C 3-i o cycloalkyl-Ci- 4 heteroalkylene, 4-10 membered
- R 1 is selected from the group consisting of hydrogen, Ci- 10 alkyl, Ci- 10 heteroalkyl, C 2-10 alkenyl, C 2-10 heteroalkenyl, C 2-10 alkynyl, C 2-10 heteroalkynyl, C 3-10 cycloalkyl, 6-10 membered aryl, 5-10 membered heteroaryl, 4-10 membered heterocycloalkyl, C 3-10 cycloalkyl-C 1-4 alkylene, C 3-i o cycloalkyl,
- heterocycloalkyl-C 1-4 alkylene 4-10 membered heterocycloalkyl-C 1-4 heteroalkylene, 6- 10 membered aryl-C 1-4 alkylene, 6-10 membered aryl-C 1-4 heteroalky lene, 5-10 membered heteroaryl-Ci- 4 alkylene, and 5-10 membered heteroaryl-Ci- 4 heteroalkylene, each optionally substituted with 1, 2, 3, or 4 independently selected R x groups; and each R x , when present, is independently selected from OH, NO 2 , CN, halo, Ci- 6 alkyl, C 2-6 alkenyl, C 2-6 alkynyl, C M haloalkyl, Ci- 6 alkoxy, Ci- 6 haloalkoxy, cyano-Ci- 3 alkyl, HO- Ci-3 alkyl, amino, Ci- 6 alkylamino, di(Ci- 6 alkyl)amino, thio, Ci- 6 alky
- the first kinase can comprise a kinase that uses an alcohol acceptor.
- the first kinase can be chosen from a hexokinase, a glucokinase, a galactokinase, a fmctokinase, a glycerol kinase, a choline kinase, a pantetheine kinase, a mevalonate kinase, a pyruvate kinase, an undecaprenol kinase, an ethanolamine kinase, a diacylglycerol kinase, a dolichol kinase, a macrolide 2’ -kinase, a ceramide kinase, or a combination thereof.
- the second kinase can comprise a kinase that uses a phosphate acceptor.
- the second kinase can be chosen from a polyphosphate kinase, a phosphomevalonate kinase, a phosphomethylpyrimidine kinase, a farnesyl- diphosphate kinase, or a combination thereof.
- the second kinase can comprise isopentenyl phosphate kinase (IPK).
- the first kinase, the second kinase, or a combination thereof comprise a mutant enzyme engineered to increase substrate promiscuity , improve enzyme activity, increase enzyme specificity with respect to a particular substrate, or a combination thereof.
- Methods can further comprise introducing the isoprenoid subunit into a natural or artificial isoprenoid biosynthetic pathway to synthesize an isoprenoid. This can be done performed within a cell or in a cell-free system.
- Also provided are methods for synthesizing an isoprenoid subunit that comprise (i) contacting a primary alcohol defined by Formula I below
- R 1 is selected from the group consisting of Ci-io alkyl, CHO heteroalkyl, C2-10 alkenyl, C2-10 heteroalkenyl, C2-10 alkynyl, C2-10 heteroalkynyl, C3-10 cycloalkyl, 6-10 membered aryl, 5-10 membered heteroaryl, 4-10 membered heterocycloalkyl, C3-10 cycloalkyl-Ci-4 alkylene, C3-io cycloalkyl-Ci-4 heteroalkylene, 4-10 membered
- R 1 is selected from the group consisting of hydrogen, Ci-10 alkyl, Ci-10 heteroalkyl, C2-10 alkenyl, C2-10 heteroalkenyl, C2-10 alkynyl, C2-10 heteroalkynyl, C3-10 cycloalkyl, 6-10 membered aryl, 5-10 membered heteroaryl, 4-10 membered heterocycloalkyl, C3-10 cycloalkyl-C 1-4 alkylene, C3-io cycloalkyl-Ci-4 hetero
- heterocycloalkyl-C 1-4 alkylene 4-10 membered heterocycloalkyl-C 1-4 heteroalkylene, 6- 10 membered aryl-C 1-4 alkylene, 6-10 membered aryl-C 1-4 heteroalky lene, 5-10 membered heteroaryl-Ci-4 alkylene, and 5-10 membered heteroaryl-Ci-4 heteroalkylene, each optionally substituted with 1, 2, 3, or 4 independently selected R x groups; and each R x , when present, is independently selected from OH, NO2, CN, halo, Ci- 6 alkyl, C2-6 alkenyl, C2-6 alkynyl, CM haloalkyl, Ci- 6 alkoxy, Ci- 6 haloalkoxy, cyano-Ci-3 alkyl, HO- C1-3 alkyl, amino, Ci- 6 alkylamino, di(Ci- 6 alkyl)amino, thio, Ci- 6 alkylthio,
- R 1 , R 1 , and R x are as defined above with respect to Formula I and P represents a phosphate group; and (ii) contacting the phosphate defined by Formula II with a second kinase in the presence of ATP to generate the isoprenoid subunit defined by Formula III below
- R 1 , R 1 , and R x are as defined above with respect to Formula I and PP represents a pyrophosphate group; wherein the first kinase, the second kinase, or a combination thereof comprise a mutant enzyme engineered to increase substrate promiscuity , improve enzyme activity, increase enzyme specificity with respect to a particular substrate, or a combination thereof.
- the first kinase can comprise a kinase that uses an alcohol acceptor.
- the first kinase can be chosen from a hexokinase, a glucokinase, a galactokinase, a fmctokinase, a glycerol kinase, a choline kinase, a pantetheine kinase, a mevalonate kinase, a pyruvate kinase, an undecaprenol kinase, an ethanolamine kinase, a diacylglycerol kinase, a dolichol kinase, a macrolide 2’ -kinase, a ceramide kinase, or a combination thereof.
- the second kinase can comprise a kinase that uses a phosphate acceptor.
- the second kinase can be chosen from a polyphosphate kinase, a phosphomevalonate kinase, a phosphomethylpyrimidine kinase, a farnesyl- diphosphate kinase, or a combination thereof.
- the second kinase can comprise isopentenyl phosphate kinase (IPK).
- the primary alcohol defined by Formula I is not one of the following
- steps (i) and (ii) can be performed in a cell-free system.
- the method can further comprise recovering the isoprenoid subunit from the cell-free system.
- steps (i) and (ii) can be performed in a cell comprising genes encoding for the first kinase and the second kinase.
- the cell can be engineered to express (or overexpress) the genes encoding for the first kinase and/or the second kinase.
- Methods can further comprise introducing the isoprenoid subunit into a natural or artificial isoprenoid biosynthetic pathway to synthesize an isoprenoid. This can be done performed within a cell or in a cell-free system.
- Also provided are methods for synthesizing an isoprenoid subunit that comprise (i) providing a cell comprising genes encoding for a first kinase and a second kinase, wherein the first kinase, the second kinase, or a combination thereof comprise a mutant enzyme engineered to increase substrate promiscuity , improve enzyme activity, increase enzyme specificity with respect to a particular substrate, or a combination thereof; (ii) incubating the cell in a fermentation broth with ATP and a primary alcohol defined by Formula I below
- R 1 is selected from the group consisting of Ci-io alkyl, C HO heteroalkyl, C 2-10 alkenyl, C 2-10 heteroalkenyl, C 2-10 alkynyl, C 2-10 heteroalkynyl, C 3-10 cycloalkyl, 6-10 membered aryl, 5-10 membered heteroaryl, 4-10 membered heterocycloalkyl, C 3-10 cycloalkyl-Ci- 4 alkylene, C 3-i o cycloalkyl-Ci- 4 heteroalkylene, 4-10 membered
- R 1 is selected from the group consisting of hydrogen, Ci- 10 alkyl, Ci- 10 heteroalkyl, C 2-10 alkenyl, C 2-10 heteroalkenyl, C 2-10 alkynyl, C 2-10 heteroalkynyl, C 3-10 cycloalkyl, 6-10 membered aryl, 5-10 membered heteroaryl, 4-10 membered heterocycloalkyl, C 3-10 cycloalkyl-C 1-4 alkylene, C 3-i o cycloalkyl,
- the first kinase can comprise a kinase that uses an alcohol acceptor.
- the first kinase can be chosen from a hexokinase, a glucokinase, a galactokinase, a fmctokinase, a glycerol kinase, a choline kinase, a pantetheine kinase, a mevalonate kinase, a pyruvate kinase, an undecaprenol kinase, an ethanolamine kinase, a diacylglycerol kinase, a dolichol kinase, a macrolide 2’ -kinase, a ceramide kinase, or a combination thereof.
- the second kinase can comprise a kinase that uses a phosphate acceptor.
- the second kinase can be chosen from a polyphosphate kinase, a phosphomevalonate kinase, a phosphomethylpyrimidine kinase, a farnesyl- diphosphate kinase, or a combination thereof.
- the second kinase can comprise isopentenyl phosphate kinase (IPK).
- the primary alcohol defined by Formula I is not one of the following
- Methods can further comprise introducing the isoprenoid subunit into a natural or artificial isoprenoid biosynthetic pathway to synthesize an isoprenoid. This can be done performed within a cell or in a cell-free system. Also provided are methods for synthesizing an isoprenoid subunit that comprise (i) contacting a primary alcohol defined by Formula I below
- R 1 is selected from the group consisting of Ci-io alkyl, CHO heteroalkyl, C2-10 alkenyl, C2-10 heteroalkenyl, C2-10 alkynyl, C2-10 heteroalkynyl, C3-10 cycloalkyl, 6-10 membered aryl, 5-10 membered heteroaryl, 4-10 membered heterocycloalkyl, C3-10 cycloalkyl-Ci-4 alkylene, C3-io cycloalkyl-Ci-4heteroalkylene, 4-10 membered
- R 1 is selected from the group consisting of hydrogen, Ci-10 alkyl, Ci-10 heteroalkyl, C2-10 alkenyl, C2-10 heteroalkenyl, C2-10 alkynyl, C2-10 heteroalkynyl, C3-10 cycloalkyl, 6-10 membered aryl, 5-10 membered heteroaryl, 4-10 membered heterocycloalkyl, C3-10 cycloalkyl-C 1-4 alkylene, C3-io cycloalkyl-Ci-4 alkylene, C3-io cycloalkyl-Ci
- heterocycloalkyl-C 1-4 alkylene 4-10 membered heterocycloalkyl-C 1-4 heteroalkylene, 6- 10 membered aryl-C 1-4 alkylene, 6-10 membered aryl-C 1-4 heteroalky lene, 5-10 membered heteroaryl-Ci-4 alkylene, and 5-10 membered heteroaryl-Ci-4heteroalkylene, each optionally substituted with 1, 2, 3, or 4 independently selected R x groups; and each R x , when present, is independently selected from OH, NO2, CN, halo, Ci- 6 alkyl, C2-6 alkenyl, C2-6 alkynyl, C M haloalkyl, Ci- 6 alkoxy, Ci- 6 haloalkoxy, cyano-Ci-3 alkyl, HO- C1-3 alkyl, amino, Ci- 6 alkylamino, di(Ci- 6 alkyl)amino, thio, Ci- 6 alkylthi
- R 1 , R 1 , and R x are as defined above with respect to Formula I and PP represents a pyrophosphate group, wherein the single enzyme comprises a phosphotransferase that can catalyze both a first phosphorylation and a second phosphorylation of the primary alcohol defined by Formula I to generate the isoprenoid subunit defined by Formula III.
- the single enzyme can comprise a phosphotransferase that uses an alcohol acceptor. In some embodiments, the single enzyme can comprise a phosphotransferase that uses a phosphate acceptor. In some embodiments, the single enzyme can comprise isopentenyl phosphate kinase (IPK). In certain embodiments, the single enzyme can comprise a mutant enzyme engineered to increase substrate promiscuity , improve enzyme activity, increase enzyme specificity with respect to a particular substrate, or a combination thereof.
- IPK isopentenyl phosphate kinase
- the primary alcohol defined by Formula I is not one of the following
- steps (i) and (ii) can be performed in a cell-free system.
- the method can further comprise recovering the isoprenoid subunit from the cell-free system.
- steps (i) and (ii) can be performed in a cell comprising genes encoding for the first kinase and the second kinase.
- the cell can be engineered to express (or overexpress) the genes encoding for the first kinase and/or the second kinase.
- Methods can further comprise introducing the isoprenoid subunit into a natural or artificial isoprenoid biosynthetic pathway to synthesize an isoprenoid. This can be done performed within a cell or in a cell-free system.
- Also provided are methods for synthesizing an isoprenoid subunit that comprise (i) incubating a cell in a fermentation broth with ATP and a primary alcohol defined by Formula I below
- R 1 is selected from the group consisting of Ci-io alkyl, CH O heteroalkyl, C2-10 alkenyl, C2-10 heteroalkenyl, C2-10 alkynyl, C2-10 heteroalkynyl, C3-10 cycloalkyl, 6-10 membered aryl, 5-10 membered heteroaryl, 4-10 membered heterocycloalkyl, C3-10 cycloalkyl-Ci-4 alkylene, C3-io cycloalkyl-Ci-4heteroalkylene, 4-10 membered
- R 1 is selected from the group consisting of hydrogen, Ci-10 alkyl, Ci-10 heteroalkyl, C2-10 alkenyl, C2-10 heteroalkenyl, C2-10 alkynyl, C2-10 heteroalkynyl, C3-10 cycloalkyl, 6-10 membered aryl, 5-10 membered heteroaryl, 4-10 membered heterocycloalkyl, C3-10 cycloalkyl-C 1-4 alkylene, C3-io cycloalkyl-Ci-4 alkylene, C3-io cycloalkyl-Ci
- heterocycloalkyl-C 1-4 alkylene 4-10 membered heterocycloalkyl-C 1-4 heteroalkylene, 6- 10 membered aryl-C 1-4 alkylene, 6-10 membered aryl-C 1-4 heteroalky lene, 5-10 membered heteroaryl-Ci-4 alkylene, and 5-10 membered heteroaryl-Ci-4heteroalkylene, each optionally substituted with 1, 2, 3, or 4 independently selected R x groups; and each R x , when present, is independently selected from OH, NO2, CN, halo, Ci- 6 alkyl, C2-6 alkenyl, C2-6 alkynyl, C M haloalkyl, Ci- 6 alkoxy, Ci- 6 haloalkoxy, cyano-Ci-3 alkyl, HO- C1-3 alkyl, amino, Ci- 6 alkylamino, di(Ci- 6 alkyl)amino, thio, Ci- 6 alkylthi
- R 1 , R 1 , and R x are as defined above with respect to Formula I and PP represents a pyrophosphate group; wherein the cell comprises a gene encoding for a
- the single enzyme can comprise a phosphotransferase that uses an alcohol acceptor. In some embodiments, the single enzyme can comprise a phosphotransferase that uses a phosphate acceptor. In some embodiments, the single enzyme can comprise isopentenyl phosphate kinase (IPK). In certain embodiments, the single enzyme can comprise a mutant enzyme engineered to increase substrate promiscuity , improve enzyme activity, increase enzyme specificity with respect to a particular substrate, or a combination thereof.
- IPK isopentenyl phosphate kinase
- the primary alcohol defined by Formula I is not one of the following
- Methods can further comprise introducing the isoprenoid subunit into a natural or artificial isoprenoid biosynthetic pathway to synthesize an isoprenoid. This can be done performed within a cell or in a cell-free system.
- isoprenoids As discussed above, the methods described herein can be used to prepare a variety of isoprenoids. Accordingly, provided herein are a variety of new isoprenoids, including isoprenoid defined by Formula IV below
- R 2 is selected from the group consisting of hydrogen, CHO alkyl, Ci-io heteroalkyl, C2-10 alkenyl, C2-10 heteroalkenyl, C2-10 alkynyl, C2-10 heteroalkynyl, C3-10 cycloalkyl, 6-10 membered aryl, 5-10 membered heteroaryl, 4-10 membered
- heterocycloalkyl C3-io cycloalkyl-Ci-4 alkylene, C3-io cycloalkyl-Ci-4 heteroalkylene, 4-10 membered heterocycloalkyl-Ci-4 alkylene, 4-10 membered heterocycloalkyl-Ci-4 heteroalkylene, 6-10 membered aryl-C 1-4 alkylene, 6-10 membered aryl-Ci-4
- R 3 is selected from the group consisting of Ci-10 alkyl, Ci-10 heteroalkyl, C2-10 alkenyl, C2-10 heteroalkenyl, C2-10 alkynyl, C2-10 heteroalkynyl, C3-10 cycloalkyl, 6-10 membered aryl, 5-10 membered heteroaryl, 4-10 membered heterocycloalkyl, C3-10 cycloalkyl-C 1-4 alkylene, C3-10 cycloalkyl-C 1-4 heteroalkylene, 4-10 membered
- heterocycloalkyl-C 1-4 alkylene 4-10 membered heterocycloalkyl-C 1-4 heteroalkylene, 6- 10 membered aryl-C 1-4 alkylene, 6-10 membered aryl-C 1-4 heteroalkylene, 5-10 membered heteroaryl-Ci-4 alkylene, and 5-10 membered heteroaryl-C 1-4 heteroalkylene, each optionally substituted with 1, 2, 3, or 4 independently selected R x groups; and each R x , when present, is independently selected from OH, NO2, CN, halo, Ci- 6 alkyl, C2-6 alkenyl, C2-6 alkynyl, CM haloalkyl, Ci- 6 alkoxy, Ci- 6 haloalkoxy, cyano-Ci-3 alkyl, HO- C1-3 alkyl, amino, Ci- 6 alkylamino, di(Ci- 6 alkyl)amino, thio, Ci- 6 alkylthio, Ci-
- R 2 is hydrogen. In other embodiments , R 2 can be selected from the group consisting of 6-10 membered aryl, 5-10 membered heteroaryl, 6-10 membered aryl-C 1-4 alkylene, 6-10 membered aryl-C 1-4 heteroalkylene, 5-10 membered heteroaryl-C 1-4 alkylene, and 5-10 membered heteroaryl-C 1-4 heteroalkylene, each optionally substituted with 1, 2, 3, or 4 independently selected R x groups. In certain embodiments, R 2 can comprise:
- n 0, 1, or 2 and R x is as defined above with respect to Formula IV.
- R 3 is not one of the following
- R 3 can be one of the following:
- R 3 is selected from the group consisting of Ci-io alkyl, CHO heteroalkyl, C2-10 alkenyl, C2-10 heteroalkenyl, C2-10 alkynyl, C2-10 heteroalkynyl, C3-10 cycloalkyl, 6-10 membered aryl, 5-10 membered heteroaryl, 4-10 membered heterocycloalkyl, C3-10 cycloalkyl-Ci-4 alkylene, C3-io cycloalkyl-Ci-4 heteroalkylene, 4-10 membered
- R 4 is selected from the group consisting of hydrogen, Ci-10 alkyl, Ci-10 heteroalkyl, C2-10 alkenyl, C2-10 heteroalkenyl, C2-10 alkynyl, C2-10 heteroalkynyl, C3-10 cycloalkyl, 6-10 membered aryl, 5-10 membered heteroaryl, 4-10 membered heterocycloalkyl, C3-10 cycloalkyl-C 1-4 alkylene, C3-io cycloalkyl-Ci-4 hetero
- heterocycloalkyl-C 1-4 alkylene 4-10 membered heterocycloalkyl-C 1-4 heteroalkylene, 6- 10 membered aryl-C 1-4 alkylene, 6-10 membered aryl-C 1-4 heteroalky lene, 5-10 membered heteroaryl-Ci-4 alkylene, and 5-10 membered heteroaryl-Ci-4 heteroalkylene, each optionally substituted with 1, 2, 3, or 4 independently selected R x groups; and each R x , when present, is independently selected from OH, NO2, CN, halo, Ci- 6 alkyl, C2-6 alkenyl, C2-6 alkynyl, CM haloalkyl, Ci- 6 alkoxy, Ci- 6 haloalkoxy, cyano-Ci-3 alkyl, HO- C1-3 alkyl, amino, Ci- 6 alkylamino, di(Ci- 6 alkyl)amino, thio, Ci- 6 alkylthio,
- R 4 can be hydrogen
- R 3 is not one of the following
- R 3 is one of the following:
- Figure 1 illustrates the structural diversity of terpenes.
- Terpene containing natural products have a variety of applications in fields such as agriculture (pyrethrin I), pharmaceuticals (Paclitaxel), and food (guaiol) among many others.
- Terpene natural products often are composed from linear portions of varying length prenyl groups that can be cyclized to a variety of ring structures such as the 7-membered ring in guaiol or the cyclopropyl group in cycloartol. These prenyl groups can also be appended to natural products from other biosynthetic systems such as polyketide synthases as is seen in viridicatumtoxin.
- Figure 2 illustrates terpene biosynthesis from primary metabolism.
- acetyl-CoA serves as the carbon source while in the DXP pathway, pyruvate and glyceraldehyde-3-phosphate (G3P) serve as carbon sources.
- G3P glyceraldehyde-3-phosphate
- Figure 3 illustrates the ability of prenyltransferases to generate diverse structures by the various combinations of hemiterpenes.
- Prenyltransferases utilize carbocationic chemistry to generate a wide-range of products.
- Head-to-middle prenyltransferases such as lavandulyl diphosphate synthase use two units of DMAPP. Head-to-head
- prenyltransferases use two units of DMAPP as is the case of chrysanthemyl diphosphate synthase. Head-to-tail prenyltransferases such as geranylpyrophosphate synthase use one DMAPP and one IPP and differential deprotonation events and resulting double bond isometry result in products such as geraniol or nerol.
- Figure 4 illustrates linear precursor generation and subsequent cyclization.
- Prenyltransferases catalyze carbon-carbon bond formation between five-carbon unit hemiterpenes to produce elongated substrates.
- the elongated substrates are then acted upon by terpene cyclases to generate a diverse array of products.
- Figure 5 illustrates a hypothetical cyclization of geranyl pyrophosphate.
- Terpene cyclases delicately direct various possible cyclization schemes afforded by the carbocationic chemistry available.
- Figure 6 illustrates a semi- synthetic route for the scalable production of artemisinin (antimalarial) through heterologous host engineering and chemical synthesis.
- S. cerevisiae was engineered to produce large amounts of the native metabolite IPP and express genes from Artemisia annua to produce high titers of artemisinic acid (25 g/L) which then served as a feedstock for the chemical synthesis of artemisin (45% overall yield from feedstock).
- Figure 7 shows the tailoring of terpenes afforded by biosynthesis.
- Terpene natural products can be hydroxylated or oxidized (colored in pink), isomerized (colored in blue), acylated (colored in orange), methylated (colored in purple), or appended to other classes of natural products (colored in green).
- Figure 8 shows the divergence of bioactivity by scaffold oxidation
- Figure 9 illustrates the direct diversification of plant extracts. Extracts were prepared that could be directly modified prior to chromatography using an existing synthetic handle in a repeatable fashion as judged by HPLC.
- Figure 10 shows a strategy of generating diversity from complexity.
- a ring distortion strategy can be used with gibberellic acid as a starting material to obtain a variety of other structures. These novel structures have a high proportion of sp3 carbons, stereocenters, and have a low clogP value indicating they could be decent compounds for chemical libraries.
- Figure 11 illustrates terpene diversity afforded through the use of substrate analogues.
- A The natural product of aristolochene synthase using farnesyl diphosphate.
- B Fluorination of C-2 in farnesyl diphosphate affords an intermediate product formed during the natural cyclization progression.
- C Use of an aniline analogue of farnesyl diphosphate by aristolochene synthase results in the formation of a 12-membered ring.
- Figure 12 illustrates the use of mutasynthesis for the production of
- FIG. 13 illustrates a precursor-directed diversification strategy for the preparation of jadomycin analogues.
- Jadomycin derivatives can be prepared by supplementing the growth media with Opropargyl- L-serine as the sole nitrogen source.
- the resulting derivative can be used as a building block for copper(I) -catalyzed alkyne- azide cycloadditions (CuAAC) with a panel of azide functionalized sugars.
- CuAAC copper(I) -catalyzed alkyne- azide cycloadditions
- Figure 14 illustrates biosynthetic building blocks and construction of natural products.
- R denotes either coenzyme- A or an acyl carrier protein linked unit.
- Polyketides are composed of malonyl coenzyme-A building blocks where R can be a variety of substituents including but not limited to hydrogen, methyl, ethyl, methoxy, and amino. Polyketides are generated by successive Claisen-like condensations. Non-ribosomal peptides are composed of amino acids that are linked together in an ATP dependent reaction to generate amide bonds. Terpenes have low fidelity in the extension of starter units and no diversity of building blocks exists naturally.
- Figures 15A-15B illustrate natural and engineered hemiterpene biosynthetic pathways.
- Figure 15A shows the MEV and DXP (grey box) pathways. A branch of the MEV pathway, the archaeal MEV I pathway, is shown in blue.
- Figure 15B shows an artificial alcohol-dependent hemiterpene (ADH) pathway completely decoupled from native isoprenoid metabolism.
- ADH alcohol-dependent hemiterpene
- Figures 16A-16B illustrate a lycopene reporter system and preliminary
- the reporter system module generates lycopene from cellular hemiterpenes. Fs is expected to inhibit native hemiterpene biosynthesis via the DXP pathway but not an artificial alcohol-dependent hemiterpene pathway.
- E. coli BL21Tuner(DE3) harboring pCDFDuet- GGPP, pACYCDuet-Lyc, and pETDuet-IPK in wells of a microplate were treated with combinations of IPTG, DMAA/ISO, and Fs and visualized.
- FIG 17 shows the effect of fosmidomycin (Fs) on lycopene production in the absence of kinase overexpression.
- E. coli BL21Tuner(DE3) harboring pCDFDuet-GGPP, pACYCDuet-Lyc, and‘empty’ pETDuet in wells of a microplate were treated with combinations of IPTG (to induce expression of heterologous genes), DMAA and ISO (potential substrates for hemiterpene production), and Fs (to knock-down DXP-dependent hemiterpene production). No DXP-independent lycopene production was observed when the cells were treated with IPTG, Fs, and provided DMAA/ISO, indicating that the activity of endogenous kinases were not sufficient to support lycopene production.
- IPTG to induce expression of heterologous genes
- DMAA and ISO potential substrates for hemiterpene production
- Fs to knock-down DXP-
- Figures 18A-18B illustrate lycopene titers supported by engineered E. coli strains.
- lycopene titers are shown at 0, 12, 26, or 48 h post induction, in the presence or absence of DMAA/ISO, using E. coli NovaBlue(DE3) harboring pAC- LYCipi and the indicated plasmid with Fs treatment. Values are the average of three replicates. Error bars are the standard deviation.
- Figure 18B shows the substrate dependence of lycopene titers determined at 0, 12, 26, or 40 h post induction with the strain harboring pETDuet-PhoN-IPK + pAC-LYCipi with Fs treatment.
- Figures 19A-19B show the extraction and quantification of lycopene. As shown in Figure 19A, lycopene was extracted from E. coli Novablue(DE3) pAC-LYCipi and analyzed by HPLC. Lycopene eluted at 8.5 min. Figure 19B shows a lycopene standard curve.
- Figures 20A-20C show tryptophan prenylation via the artificial alcohol-dependent hemiterpene pathway.
- Figure 20A shows the reaction scheme of the ADH pathway coupled to the prenyltransferase, FgaPT2.
- Figure 20B shows HPLC chromatograms showing peaks corresponding to DMAT : (i) in vitro FgaPT2 reaction with synthetic DMAPP; (ii) in vitro reaction with purified PhoN, IPK, and FgaPT2; (iii) culture media from in vivo bioconversion with the ADH module. The chromatograms are scaled equally.
- Figure 20C is an extracted-ion chromatogram showing a single peak
- Figure 21 illustrates precursor directed natural product diversification strategies.
- the polyketide diversification platform hinges on the generation of unnatural malonyl- coenzyme A derivatives generated by the ATP-dependent ligation of various malonic acids and coenzyme A using a malonyl-CoA synthase (MatB) from Rhizobium trifolii.
- MatB malonyl-CoA synthase
- a terpene production platform that converts alcohols to their corresponding diphosphates is also being investigated.
- Figure 22 illustrates the substrate promiscuity of PhoN from S. flexneri.
- PhoN can phosphorylate a variety of primary alcohols (R) using various phosphate donors (D).
- Figure 23 illustrates the trichloroacetonitrile-promoted phosphorylation of various alcohols.
- a wide variety of alcohols were phosphorylated using this strategy to generate a diverse panel of substrates to test with IPK, as well as prenyltransferases,
- prenylelongases e.g., IspA, FgaPT2, CpaD, and FtmPTl.
- terperne synthases e.g., IspA, FgaPT2, CpaD, and FtmPTl.
- Figure 24 illustrates the crystal structure of T. acidophilum isopentenyl monophosphate kinase (PDB 3LKK).
- PDB 3LKK T. acidophilum isopentenyl monophosphate kinase
- Panel B shows a surface depiction of IPK shows a tight hydrophobic pocket with the sp 2 methyl oriented away from the cleft.
- Figure 25 shows the substrate promiscuity of IPK as determined by low- resolution MS.
- IP dimethylallyl monophosphate
- Figure 26 illustrates the strategy for kinetic characterization of kinases.
- ADP formation is monitored by a loss in NADH absorbance.
- ADP is converted back into ATP, holding the concentration of ATP in the assay constant.
- panel B using isopentenyl monophosphate with IPK as an example, kinases are screened with (red) and without (blue) substrate to determine background rate of ATP hydrolysis.
- panel C a Michaelis-Menten curve is then fitted using a nonlinear regression for the calculation of K m and k at .
- Figure 27 illustrates the IPK tolerance of alternative substrates. Portions in red highlight rigid portions of substrates. IPK exhibits better kinetic properties with shorter alkyl monophosphates that have flexibility near the monophosphate portion of the molecule. This is reflected in the K m .
- Figure 28 illustrates the biosynthesis of terpenes.
- terpene natural products are composed of hydrocarbon backbones that arise from cyclization of linear prenyl diphosphates. Linear diphosphates are generated by the sequential addition of IPP to DMAPP by prenyltransferases.
- panel B terpenes are
- Terpenes can also be combined with other metabolites such as fatty acids (tetrahydrocannabinol,
- FIG. 29 illustrates hemiterpene analogues. Alcohols were treated with trichloroacetonitrile and phosphorylated with several additions of triethylammonium phosphate solution before being purified on silica.
- Figure 30 illustrates the reported ability of FPPases to use DMAPP analogue.
- Figure 31 shows extender unit specificity of wild-type IspA with DMAPP as the starter unit. Conversions were measured by comparing the extracted ion count of the product compared to the amount of starter unit, DMAPP, remaining. For conversion of DMAPP to product with the natural substrate IPP, all extension products (CIO analogues) were summed for the total conversion. The standard deviation of these measurements is 3.2% and was determined by measuring the WT reaction in triplicate.
- Figure 32 shows the active site of E. coli FPPase (PDB 1RQI). Sterically, IspA provides plenty of room for the use of IPP analogues in the active site. As DMAPP is extended and reloaded into the active site for further elongation, the extended PDB 1RQI.
- diphosphate reaches further into the cavity shown.
- Figure 33 illustrates the extender unit specificity of wild-type IspA with GPP as the starter unit. Conversions were measured by comparing the extracted ion count the product compared to the amount of starter unit, GPP, remaining. No products were detected for 23, 28, and 31. The standard deviation of these measurements is 3.2% and was determined by measuring the WT reaction in triplicate.
- Figure 34 illustrates key NMR assignments and correlations for assignment of the enzymatically generated product GPP-26b. Arrows represent spin coupling observed by 1 H- 1 H COSY. Carbon shifts in blue are predicted shifts while those in black were observed.
- Figure 35 illustrates common methods of synthesizing allenes.
- mechanism A an S N 2’ method is utilized for allene formation.
- mechanism B addition to a conjugated alkene can provide an allene.
- Figures 36A-36B illustrate the extension of DMAPP by IspA and mutants. As shown in Figure 36A, a method was developed to separate the different products of IspA. As showed in Figure 36B, mutants of IspA found to allow for additional or limit extension events show different product distributions than that of the WT.
- Figure 37 shows the molecular ruler in the IspA active site (PDB 1RQI).
- Panel A shows where the extender unit nucleophile is in relationship to the starter unit DMAPP. Once extended, the newly formed allylic diphosphate can load back in to the starter unit site for additional extensions.
- panel B in S81F, the phenylalanine mutation prematurely blocks the growing chain cavity limiting IspA to a single extension.
- panel C in the WT, Y80 lies at the bottom of the active site, accommodating the loading of GPP for an extension.
- the Y80D mutation points the active site restricting residue away which enables the WT product, FPP, to load back into the active site for a third extension to generate GGPP.
- Figure 38 illustrates chain length determining mutants and promiscuity towards unnatural extender units with DMAPP as the starter unit. Activities for each enzyme were normalized to the activity of that enzyme with natural substrate, IPP. Errors were within 3.2%.
- Figures 39A-39B illustrate multiple products formed using alternative substrates.
- Figure 39A using analogue 18 as an example, after addition of the homoallylic alkene onto C 1 of DMAPP, multiple deprotonation events can occur resulting in the formation of various products.
- Figure 39B when using 18 as a substrate, two different products are observed.
- Figure 40 illustrates terpene diversity stemming from the bisaboyl cation.
- Figures 41A-41B illustrate methods for measuring terpenes.
- Figure 41A shows a comparison of traces from the TIC using EI-MS compared to that of GC-FID shows a cleaner trace when measuring by FID with 10 ng/pL trans-c aryophyllene.
- Figure 4 IB terpenes that are the same size have very similar linear detection properties when using FID as is observed for / ra ny - c a r y o p h y 11 c n c and g-humulene.
- Figure 42 is a plot of aristolochene production over time. Aristolochene is measured using an internal standard of 10 ng/pL trans-caryophyllene.
- Figure 43 shows analogues as substrates for terpene cyclases.
- Terpene cyclases show promiscuity towards the opposite end of the diphosphate (tail).
- No examples beyond fluorinated analogues have shown promiscuity at the diphosphate (head) portion of the molecule.
- Figure 44 shows halogenated allylic diphosphates. Minimal studies with halogenated terpene analogues for terpene cyclases have shown an absence of ionization presumably due to the high energy of the resulting carbocation. The use of halogenated DMAPP analogues for prenyltransferase extension suggests that these intermediates are not energetically infeasible.
- Figure 45 illustrates efforts beyond allylic diphosphate substrates.
- Terpene cyclases proceed through stepwise reaction mechanisms in which allylic diphosphates are ionized to form allylic carbocations. This strict requirement limits diversification of units near the head of the substrate.
- Engineering of a terpene cyclase capable of cyclizing a non-allylic diphosphate substrate would generate an enzyme that would proceed through an S N 2 type reaction that mechanistically would allow for wider substrate tolerance at the head of the diphosphate substrates.
- Figure 46 illustrates the romiscuity of NovQ. Work shows a broad tolerance of NovQ towards various unnatural prenyl donors.
- Figure 47 illustrates the promiscuity of FgaPT2. Work shows a broad tolerance of FgaPT2 towards various unnatural prenyl donors.
- Figure 48 shows in vivo unnatural tryptophan prenylation with cinnamyl alcohol.
- A Coupling of the investigated enzymes from previous examples in vivo for the generation of unnatural hemiterpenes and subsequent prenylation of tryptophan.
- B The extracted ion chromatogram (EIC) showed a product peak consistent with the in vitro produced analogue
- Figure 49 shows in vivo unnatural tryptophan prenylation with 5-hexyn-l-ol.
- Figure 50 shows the hypothetical prenylation of aromatic systems with unnatural prenyl diphosphates from IspA.
- ABBA prenyltransferases have shown the ability to use substrates that do not contain allylic diphosphates, these enzymes can presumably accommodate substrates for concerted prenylation events using S N 2 mechanisms if sterics allow.
- Figure 51 illustrates the precursor directed diversification of terpenes. Chemical precursors can be transformed into natural product derivatives with non-natural chemical functionality which would enable synthetic diversification.
- Figure 52 illustrates the synthetic biology approach to terpene natural product diversification.
- a synthetic biology approach Using a synthetic biology approach, a completely unnatural pathway has been assembled that allows for the transformation of chemical precursors into various natural product derivatives.
- various natural product analogues can be biosynthesized using this platform.
- Figure 53 illustrates the in vivo production of DMAPP from DMAA by PhoN and IPK and subsequent use by FgaPT2. Blue (10, 19, and 23): mass ions were detected by HR-LCMS consistent with the expected product.
- Figure 54 illustrates the reaction catalyzed by PhoN and structures of alcohols tested. Blue (1, 2, 3, 4, 5, 9, 10, 13, 15, 16, 17, 18, 19, 20, 22, and 23): mass ions were detected by HR-LCMS consistent with the expected product.
- Figure 56 illustrates the reaction catalyzed by FgaPT2 and structures of pyrophosphates tested. Blue (6, 7, 8, 10, 12, 13, 17, 19, 20, 23): mass ions were detected by HR-LCMS consistent with the expected product
- Figure 58 illustrates the reaction catalyzed by FgaPT2 M328G and structures of pyrophosphates tested.
- Figure 60 illustrates the reaction catalyzed by CpaD and structures of
- Figure 61 is a plot showing the percent conversion of reactions catalyzed by CpaD with three different cyclic dipeptides.
- Figure 62 illustrates the reaction catalyzed by CpaD I329G and structures of pyrophosphates tested.
- Figure 63 is a plot showing the percent conversion of reactions catalyzed by CpaD wild type and I329G mutant with two different cyclic dipeptides.
- Figure 64 illustrates the reaction catalyzed by FtmPTl and structures of pyrophosphates tested.
- Figure 65 is a plot showing the percent conversion of reactions catalyzed by FtmPTl with three different cyclic dipeptides.
- Figure 66 illustrates the reaction catalyzed by FtmPTl M364G and structures of pyrophosphates tested.
- Figure 67 is a plot showing the percent conversion of reactions catalyzed by FtmPTl wild type and M364G mutant with two different cyclic dipeptides.
- n-membered where n is an integer typically describes the number of ring-forming atoms in a moiety where the number of ring-forming atoms is n.
- piperidinyl is an example of a 6-membered heterocycloalkyl ring
- pyrazolyl is an example of a 5-membered heteroaryl ring
- pyridyl is an example of a 6-membered heteroaryl ring
- 1,2,3,4-tetrahydro-naphthalene is an example of a 10-membered cycloalkyl group.
- the phrase“optionally substituted” means unsubstituted or substituted.
- the term“substituted” means that a hydrogen atom is removed and replaced by a substituent. It is to be understood that substitution at a given atom is limited by valency.
- C n-m indicates a range which includes the endpoints, wherein n and m are integers and indicate the number of carbons. Examples include CM, Ci- 6 , and the like.
- C n m alkyl refers to a saturated hydrocarbon group that may be straight-chain or branched, having n to m carbons.
- alkyl moieties include, but are not limited to, chemical groups such as methyl, ethyl, n-propyl, isopropyl, n-butyl, tert- butyl, isobutyl, sec-butyl; higher homologs such as 2-methyl- 1 -butyl, n-pcntyl, 3-pentyl, n- hexyl, 1,2,2-trimethylpropyl, and the like.
- the alkyl group contains from 1 to 6 carbon atoms, from 1 to 4 carbon atoms, from 1 to 3 carbon atoms, or 1 to 2 carbon atoms.
- heteroalkyl by itself or in combination with another term, means, unless otherwise stated, a stable straight or branched chain, or cyclic hydrocarbon radical, or combinations thereof, consisting of at least one carbon atoms and at least one heteroatom selected from the group consisting of O, N, P, Si and S, and wherein the nitrogen, phosphorus, and sulfur atoms may optionally be oxidized and the nitrogen heteroatom may optionally be quatemized.
- the heteroatom(s) O, N, P and S and Si may be placed at any interior position of the heteroalkyl group or at the position at which alkyl group is attached to the remainder of the molecule.
- heteroatoms Up to two or three heteroatoms may be consecutive, such as, for example,— CH2— NH— OCH 3 and— CH2— O— Si(CH 3 ) 3 .
- heteroalkylene by itself or as part of another substituent means a divalent radical derived from heteroalkyl, as exemplified, but not limited by,— CH2— CH 2— S— CH 2— CH 2— and— CH 2— S— CH 2— CH 2— NH— CH 2— .
- heteroatoms can also occupy either or both of the chain termini (e.g.,
- alkyleneoxo alkylenedioxo, alkyleneamino, alkylenediamino, and the like).
- no orientation of the linking group is implied by the direction in which the formula of the linking group is written.
- the formula— C(0)0R'— represents both— C(0)0R'— and— R'OC(O)— .
- heteroalkyl groups include those groups that are attached to the remainder of the molecule through a heteroatom, such as— C(0)R',— C(0)NR',— NR'R",— OR',— SR', and/or— SO2R'.
- heteroalkyl is recited, followed by recitations of specific heteroalkyl groups, such as— NR'R" or the like, it will be understood that the terms heteroalkyl and— NR'R" are not redundant or mutually exclusive. Rather, the specific heteroalkyl groups are recited to add clarity. Thus, the term “heteroalkyl” should not be interpreted herein as excluding specific heteroalkyl groups, such as— NR'R" or the like.
- C n m alkenyl refers to an alkyl group having one or more double carbon-carbon bonds and having n to m carbons.
- Example alkenyl groups include, but are not limited to, ethenyl, n-propenyl, isopropenyl, n-butcnyl, sec-butenyl, and the like.
- the alkenyl moiety contains 2 to 6, 2 to 4, or 2 to 3 carbon atoms.
- C n m alkynyl refers to an alkyl group having one or more triple carbon-carbon bonds and having n to m carbons.
- Example alkynyl groups include, but are not limited to, ethynyl, propyn-l-yl, propyn-2-yl, and the like.
- the alkynyl moiety contains 2 to 6, 2 to 4, or 2 to 3 carbon atoms.
- C n m alkylene refers to a divalent alkyl linking group having n to m carbons.
- alkylene groups include, but are not limited to, ethan-l,2-diyl, propan- 1, 3 -diyl, propan- 1, 2-diyl, butan-l,4-diyl, butan- 1,3 -diyl, butan-1, 2-diyl, 2-methyl-propan- 1,3-diyl, and the like.
- the alkylene moiety contains 2 to 6, 2 to 4, 2 to 3, 1 to 6, 1 to 4, or 1 to 2 carbon atoms.
- C n m alkoxy refers to a group of formula -O-alkyl, wherein the alkyl group has n to m carbons.
- Example alkoxy groups include methoxy, ethoxy, propoxy (e.g., n-propoxy and isopropoxy), ie/ -butoxy, and the like. In some embodiments, the alkyl group has 1 to 6,
- C n m alkylamino refers to a group of
- alkyl group has n to m carbon atoms.
- the alkyl group has 1 to 6, 1 to 4, or 1 to 3 carbon atoms.
- C n m alkoxycarbonyl refers to a group of
- formula -C(0)0-alkyl wherein the alkyl group has n to m carbon atoms. In some embodiments, the alkyl group has 1 to 6, 1 to 4, or 1 to 3 carbon atoms.
- C n m alkylcarbonyl refers to a group of formula -C(O)- alkyl, wherein the alkyl group has n to m carbon atoms. In some embodiments, the alkyl group has 1 to 6, 1 to 4, or 1 to 3 carbon atoms.
- C n m alkylcarbonylamino refers to a group of formula -NHC(0)-alkyl, wherein the alkyl group has n to m carbon atoms. In some embodiments, the alkyl group has 1 to 6, 1 to 4, or 1 to 3 carbon atoms.
- C n m alkylsulfonylamino refers to a group of formula -NHS(0) 2 -alkyl, wherein the alkyl group has n to m carbon atoms. In some embodiments, the alkyl group has 1 to 6, 1 to 4, or 1 to 3 carbon atoms.
- amino sulfonyl refers to a group of formula -S(0) 2 NH 2 .
- C n m alkylaminosulfonyl refers to a group of formula -S(0) 2 NH(alkyl), wherein the alkyl group has n to m carbon atoms. In some embodiments, the alkyl group has 1 to 6, 1 to 4, or 1 to 3 carbon atoms.
- the term“di(C n-m alkyl)aminosulfonyl” refers to a group of formula -S(0) 2 N(alkyl) 2 , wherein each alkyl group independently has n to m carbon atoms. In some embodiments, each alkyl group has, independently, 1 to 6, 1 to 4, or 1 to 3 carbon atoms.
- the term“aminosulfonylamino” refers to a group of formula - NHS(0) 2 NH 2 .
- C n m alkylaminosulfonylamino refers to a group of formula -NHS(0) 2 NH(alkyl), wherein the alkyl group has n to m carbon atoms. In some embodiments, the alkyl group has 1 to 6, 1 to 4, or 1 to 3 carbon atoms.
- the term“di(C n-m alkyl)aminosulfonylamino” refers to a group of formula -NHS(0) 2 N(alkyl) 2 , wherein each alkyl group independently has n to m carbon atoms. In some embodiments, each alkyl group has, independently, 1 to 6, 1 to 4, or 1 to 3 carbon atoms.
- aminocarbonylamino employed alone or in combination with other terms, refers to a group of formula -NHC(0)NH 2 .
- C n m alkylaminocarbonylamino refers to a group of formula -NHC(0)NH(alkyl), wherein the alkyl group has n to m carbon atoms. In some embodiments, the alkyl group has 1 to 6, 1 to 4, or 1 to 3 carbon atoms.
- di(C n-m alkyl)aminocarbonylamino refers to a group of formula -NHC(0)N(alkyl) 2 , wherein each alkyl group independently has n to m carbon atoms. In some embodiments, each alkyl group has, independently, 1 to 6, 1 to 4, or 1 to 3 carbon atoms.
- C n m alkylcarbamyl refers to a group of formula -C(O)- NH(alkyl), wherein the alkyl group has n to m carbon atoms. In some embodiments, the alkyl group has 1 to 6, 1 to 4, or 1 to 3 carbon atoms.
- thio refers to a group of formula -SH.
- C n m alkylsulfinyl refers to a group of formula -S(O)- alkyl, wherein the alkyl group has n to m carbon atoms. In some embodiments, the alkyl group has 1 to 6, 1 to 4, or 1 to 3 carbon atoms.
- C n m alkylsulfonyl refers to a group of formula -S(0) 2 - alkyl, wherein the alkyl group has n to m carbon atoms. In some embodiments, the alkyl group has 1 to 6, 1 to 4, or 1 to 3 carbon atoms.
- amino refers to a group of formula -NH 2 .
- aryl refers to an aromatic hydrocarbon group, which may be monocyclic or polycyclic (e.g., having 2, 3 or 4 fused rings).
- C n-m aryl refers to an aryl group having from n to m ring carbon atoms.
- Aryl groups include, e.g., phenyl, naphthyl, anthracenyl, phenanthrenyl, indanyl, indenyl, and the like.
- aryl groups have from 6 to about 20 carbon atoms, from 6 to about 15 carbon atoms, or from 6 to about 10 carbon atoms.
- the aryl group is a substituted or unsubstituted phenyl.
- the term“di(C n-m -alkyl)amino” refers to a group of formula -N(alkyl)2, wherein the two alkyl groups each has, independently, n to m carbon atoms. In some embodiments, each alkyl group independently has 1 to 6, 1 to 4, or 1 to 3 carbon atoms.
- the term“di(C n-m -alkyl)carbamyl” refers to a group of formula - C(0)N(alkyl) 2 , wherein the two alkyl groups each has, independently, n to m carbon atoms. In some embodiments, each alkyl group independently has 1 to 6, 1 to 4, or 1 to 3 carbon atoms.
- halo refers to F, Cl, Br, or I. In some embodiments, a halo is F, Cl, or Br. In some embodiments, a halo is F or Cl.
- C n-m haloalkoxy refers to a group of formula -O-haloalkyl having n to m carbon atoms.
- An example haloalkoxy group is OCF3.
- the haloalkoxy group is fluorinated only.
- the alkyl group has 1 to 6, 1 to 4, or 1 to 3 carbon atoms.
- C n-m haloalkyl refers to an alkyl group having from one halogen atom to 2s+l halogen atoms which may be the same or different, where“s” is the number of carbon atoms in the alkyl group, wherein the alkyl group has n to m carbon atoms.
- the haloalkyl group is fluorinated only.
- the alkyl group has 1 to 6, 1 to 4, or 1 to 3 carbon atoms.
- cycloalkyl refers to non-aromatic cyclic hydrocarbons including cyclized alkyl and/or alkenyl groups.
- Cycloalkyl groups can include mono- or polycyclic (e.g., having 2, 3 or 4 fused rings) groups and spirocycles. Cycloalkyl groups can have 3, 4, 5, 6, 7, 8, 9, or 10 ring-forming carbons (C3-10). Ring-forming carbon atoms of a cycloalkyl group can be optionally substituted by oxo or sulfido (e.g., C(O) or C(S)). Cycloalkyl groups also include cycloalky lidenes.
- Example cycloalkyl groups include cyclopropyl, cyclobutyl, cyclopentyl, cyclohexyl, cycloheptyl, cyclopentenyl, cyclohexenyl, cyclohexadienyl, cycloheptatrienyl, norbomyl, norpinyl, norcamyl, and the like.
- cycloalkyl is cyclopropyl, cyclobutyl, cyclopentyl, cyclohexyl, cyclopentyl, or adamantyl.
- the cycloalkyl has 6-10 ring-forming carbon atoms.
- cycloalkyl is adamantyl. Also included in the definition of cycloalkyl are moieties that have one or more aromatic rings fused (i.e., having a bond in common with) to the cycloalkyl ring, for example, benzo or thienyl derivatives of cyclopentane, cyclohexane, and the like.
- a cycloalkyl group containing a fused aromatic ring can be attached through any ring-forming atom including a ring-forming atom of the fused aromatic ring.
- heteroaryl refers to a monocyclic or polycyclic aromatic heterocycle having at least one heteroatom ring member selected from sulfur, oxygen, and nitrogen.
- the heteroaryl ring has 1, 2, 3, or 4 heteroatom ring members independently selected from nitrogen, sulfur and oxygen.
- any ring-forming N in a heteroaryl moiety can be an N-oxide.
- the heteroaryl has 5-10 ring atoms and 1, 2, 3 or 4 heteroatom ring members independently selected from nitrogen, sulfur and oxygen.
- the heteroaryl has 5-6 ring atoms and 1 or 2 heteroatom ring members independently selected from nitrogen, sulfur and oxygen.
- the heteroaryl is a five-membered or six-membered heteroaryl ring.
- a five-membered heteroaryl ring is a heteroaryl with a ring having five ring atoms wherein one or more (e.g., 1, 2, or 3) ring atoms are independently selected from N, O, and S.
- Exemplary five- membered ring heteroaryls are thienyl, furyl, pyrrolyl, imidazolyl, thiazolyl, oxazolyl, pyrazolyl, isothiazolyl, isoxazolyl, 1,2,3-triazolyl, tetrazolyl, 1,2,3-thiadiazolyl, 1,2,3- oxadiazolyl, 1,2,4-triazolyl, 1,2,4-thiadiazolyl, 1 ,2,4-oxadiazolyl, 1,3,4-triazolyl, 1,3,4- thiadiazolyl, and 1,3,4-oxadiazolyl.
- a six-membered heteroaryl ring is a heteroaryl with a ring having six ring atoms wherein one or more (e.g., 1, 2, or 3) ring atoms are independently selected from N, O, and S.
- Exemplary six-membered ring heteroaryls are pyridyl, pyrazinyl, pyrimidinyl, triazinyl and pyridazinyl.
- heterocycloalkyl refers to non-aromatic monocyclic or polycyclic heterocycles having one or more ring-forming heteroatoms selected from O,
- heterocycloalkyl N, or S. Included in heterocycloalkyl are monocyclic 4-, 5-, 6-, and 7-membered heterocycloalkyl groups. Heterocycloalkyl groups can also include spirocycles.
- Example heterocycloalkyl groups include pyrrolidin-2-one, l,3-isoxazolidin-2-one, pyranyl, tetrahydropuran, oxetanyl, azetidinyl, morpholino, thiomorpholino, piperazinyl, tetrahydrofuranyl, tetrahydrothienyl, piperidinyl, pyrrolidinyl, isoxazolidinyl,
- heterocycloalkyl group can be optionally substituted by oxo or sulfido (e.g., C(O), S(O), C(S), or S(0) 2 , etc.).
- the heterocycloalkyl group can be attached through a ring-forming carbon atom or a ring-forming heteroatom.
- the heterocycloalkyl group contains 0 to 3 double bonds. In some embodiments, the heterocycloalkyl group contains 0 to 2 double bonds.
- heterocycloalkyl moieties that have one or more aromatic rings fused ( i.e ., having a bond in common with) to the cycloalkyl ring, for example, benzo or thienyl derivatives of piperidine, morpholine, azepine, etc.
- a heterocycloalkyl group containing a fused aromatic ring can be attached through any ring-forming atom including a ring-forming atom of the fused aromatic ring.
- the heterocycloalkyl has 4-10, 4-7 or 4-6 ring atoms with 1 or 2 heteroatoms independently selected from nitrogen, oxygen, or sulfur and having one or more oxidized ring members.
- the definitions or embodiments refer to specific rings (e.g., an azetidine ring, a pyridine ring, etc.). Unless otherwise indicated, these rings can be attached to any ring member provided that the valency of the atom is not exceeded. For example, an azetidine ring may be attached at any position of the ring, whereas a pyridin- 3-yl ring is attached at the 3-position.
- Tautomeric forms result from the swapping of a single bond with an adjacent double bond together with the concomitant migration of a proton.
- Tautomeric forms include pro to tropic tautomers which are isomeric protonation states having the same empirical formula and total charge.
- Example prototropic tautomers include ketone - enol pairs, amide - imidic acid pairs, lactam - lactim pairs, enamine - imine pairs, and annular forms where a proton can occupy two or more positions of a heterocyclic system, for example, 1H- and 3H- imidazole, 1H-, 2H- and 4H- 1,2,4-triazole, 1H- and 2H- isoindole, and 1H- and 2H- pyrazole.
- Tautomeric forms can be in equilibrium or sterically locked into one form by appropriate substitution.
- the compounds described herein can contain one or more asymmetric centers and thus occur as racemates and racemic mixtures, enantiomerically enriched mixtures, single enantiomers, individual diastereomers and diastereomeric mixtures (e.g., including ( R )- and (S)-enantiomers, diastereomers, (D)-isomers, (L)- isomers, (+) ( dextrorotatory ) forms, (-) (levorotatory) forms, the racemic mixtures thereof, and other mixtures thereof).
- Additional asymmetric carbon atoms can be present in a substituent, such as an alkyl group.
- Optical isomers can be obtained in pure form by standard procedures known to those skilled in the art, and include, but are not limited to, diastereomeric salt formation, kinetic resolution, and asymmetric synthesis. See, for example, Jacques, et ah,
- compounds provided herein can also include all isotopes of atoms occurring in the intermediates or final compounds. Isotopes include those atoms having the same atomic number but different mass numbers. Unless otherwise stated, when an atom is designated as an isotope or radioisotope (e.g., deuterium, [ n C], [ 18 F]), the atom is understood to comprise the isotope or radioisotope in an amount at least greater than the natural abundance of the isotope or radioisotope.
- isotope or radioisotope e.g., deuterium, [ n C], [ 18 F]
- an atom is designated as“D” or“deuterium”, the position is understood to have deuterium at an abundance that is at least 3000 times greater than the natural abundance of deuterium, which is 0.015% (i.e., at least 45% incorporation of deuterium).
- All compounds, and pharmaceutically acceptable salts thereof, can be found together with other substances such as water and solvents (e.g. hydrates and solvates) or can be isolated.
- preparation of compounds can involve the addition of acids or bases to affect, for example, catalysis of a desired reaction or formation of salt forms such as acid addition salts.
- Example acids can be inorganic or organic acids and include, but are not limited to, strong and weak acids.
- Some example acids include hydrochloric acid, hydrobromic acid, sulfuric acid, phosphoric acid, -tolucncsulfonic acid, 4-nitrobenzoic acid, methanesulfonic acid, benzenesulfonic acid, trifluoroacetic acid, and nitric acid.
- Some weak acids include, but are not limited to acetic acid, propionic acid, butanoic acid, benzoic acid, tartaric acid, pentanoic acid, hexanoic acid, heptanoic acid, octanoic acid, nonanoic acid, and decanoic acid.
- Example bases include lithium hydroxide, sodium hydroxide, potassium hydroxide, lithium carbonate, sodium carbonate, potassium carbonate, and sodium bicarbonate.
- Some example strong bases include, but are not limited to, hydroxide, alkoxides, metal amides, metal hydrides, metal dialkylamides and arylamines, wherein; alkoxides include lithium, sodium and potassium salts of methyl, ethyl and t-butyl oxides; metal amides include sodium amide, potassium amide and lithium amide; metal hydrides include sodium hydride, potassium hydride and lithium hydride; and metal dialkylamides include lithium, sodium, and potassium salts of methyl, ethyl, n-propyl, iso-propyl, n- butyl, tert- butyl, trimethylsilyl and cyclohexyl substituted amides.
- the compounds provided herein, or salts thereof are substantially isolated.
- substantially isolated is meant that the compound is at least partially or substantially separated from the environment in which it was formed or detected.
- Partial separation can include, for example, a composition enriched in the compounds provided herein.
- Substantial separation can include compositions containing at least about 50%, at least about 60%, at least about 70%, at least about 80%, at least about 90%, at least about 95%, at least about 97%, or at least about 99% by weight of the compounds provided herein, or salt thereof. Methods for isolating compounds and their salts are routine in the art.
- ambient temperature and“room temperature” or“rt” as used herein, are understood in the art, and refer generally to a temperature, e.g. a reaction temperature, that is about the temperature of the room in which the reaction is carried out, for example, a temperature from about 20 °C to about 30 °C.
- phrases“pharmaceutically acceptable” is employed herein to refer to those compounds, materials, compositions, and/or dosage forms which are, within the scope of sound medical judgment, suitable for use in contact with the tissues of human beings and animals without excessive toxicity, irritation, allergic response, or other problem or complication, commensurate with a reasonable benefit/risk ratio.
- the present application also includes pharmaceutically acceptable salts of the compounds described herein.
- pharmaceutically acceptable salts refers to derivatives of the disclosed compounds wherein the parent compound is modified by converting an existing acid or base moiety to its salt form.
- pharmaceutically acceptable salts include, but are not limited to, mineral or organic acid salts of basic residues such as amines; alkali or organic salts of acidic residues such as carboxylic acids; and the like.
- the pharmaceutically acceptable salts of the present application include the conventional non-toxic salts of the parent compound formed, for example, from non-toxic inorganic or organic acids.
- the pharmaceutically acceptable salts of the present application can be synthesized from the parent compound which contains a basic or acidic moiety by conventional chemical methods. Generally, such salts can be prepared by reacting the free acid or base forms of these compounds with a
- non-aqueous media like ether, ethyl acetate, alcohols (e.g., methanol, ethanol, iso-propanol, or butanol) or acetonitrile (MeCN) are preferred.
- suitable salts are found in Remington's Pharmaceutical Sciences, 17th ed., Mack Publishing Company, Easton, Pa., 1985, p. 1418 and Journal of Pharmaceutical Science, 66, 2 (1977). Conventional methods for preparing salt forms are described, for example, in Handbook of Pharmaceutical Salts: Properties, Selection, and Use, Wiley-VCH, 2002.
- a cell includes a plurality of cells, including mixtures thereof.
- the terms“may,”“optionally,” and“may optionally” are used interchangeably and are meant to include cases in which the condition occurs as well as cases in which the condition does not occur.
- nucleic acid as used herein means a polymer composed of
- nucleotides e.g. deoxyribonucleotides or ribonucleotides.
- ribonucleic acid and“RNA” as used herein mean a polymer composed of ribonucleotides.
- deoxyribonucleic acid and“DNA” as used herein mean a polymer composed of deoxyribonucleotides.
- oligonucleotide denotes single- or double- stranded nucleotide multimers of from about 2 to up to about 100 nucleotides in length.
- oligonucleotides may be prepared by the phosphoramidite method described by Beaucage and Carruthers, Tetrahedron Lett., 22:1859-1862 (1981), or by the triester method according to Matteucci, et ah, J. Am. Chem. Soc., 103:3185 (1981), both incorporated herein by reference, or by other chemical methods using either a commercial automated oligonucleotide synthesizer or VLSIPSTM technology.
- oligonucleotides are referred to as“double- stranded,” it is understood by those of skill in the art that a pair of oligonucleotides exist in a hydrogen-bonded, helical array typically associated with, for example, DNA.
- double- stranded is also meant to refer to those forms which include such structural features as bulges and loops, described more fully in such biochemistry texts as Stryer, Biochemistry , Third Ed., (1988), incorporated herein by reference for all purposes.
- polynucleotide refers to a single or double stranded polymer composed of nucleotide monomers.
- the polynucleotide is composed of nucleotide monomers of generally greater than 100 nucleotides in length and up to about 8,000 or more nucleotides in length.
- polypeptide refers to a compound made up of a single chain of D- or L- amino acids or a mixture of D- and L- amino acids joined by peptide bonds.
- promoter or“regulatory element” refers to a region or sequence determinants located upstream or downstream from the start of transcription and which are involved in recognition and binding of RNA polymerase and other proteins to initiate transcription. Promoters need not be of bacterial origin, for example, promoters derived from viruses or from other organisms can be used in the compositions, systems, or methods described herein
- recombinant refers to a human manipulated nucleic acid (e.g.
- a recombinant expression cassette comprising a promoter operably linked to a second nucleic acid (e.g. polynucleotide) may include a promoter that is heterologous to the second nucleic acid (e.g.
- a recombinant expression cassette may comprise nucleic acids (e.g.
- nucleic acids e.g. polynucleotides
- human manipulated restriction sites or plasmid vector sequences may flank or separate the promoter from the second nucleic acid (e.g. polynucleotide).
- nucleic acids e.g. polynucleotides
- nucleic acids can be manipulated in many ways and are not limited to the examples above.
- nucleic acids or polypeptide sequences refer to two or more sequences or subsequences that are the same or have a specified percentage of amino acid residues or nucleotides that are the same (i.e., about 60% identity, preferably 61%, 62%, 63%, 64%, 65%, 66%, 67%, 68%, 69%, 70%, 71%, 72%, 73%, 74%, 75%, 76%, 77%, 78%, 79%, 80%, 81%, 82%, 83%, 84%, 85%, 86%, 87%, 88%, 89%, 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98%, 99% or higher identity over a specified region when compared and aligned for maximum correspondence over a comparison window or designated region) as measured using a BLAST or BLAST 2.0 sequence comparison algorithms with default parameters described below, or by manual alignment and visual inspection (see,
- sequences are then said to be“substantially identical.”
- This definition also refers to, or may be applied to, the compliment of a test sequence.
- the definition also includes sequences that have deletions and/or additions, as well as those that have substitutions.
- the preferred algorithms can account for gaps and the like.
- identity exists over a region that is at least about 10 amino acids or 20 nucleotides in length, or more preferably over a region that is 10-50 amino acids or 20-50 nucleotides in length.
- percent (%) amino acid sequence identity is defined as the percentage of amino acids in a candidate sequence that are identical to the amino acids in a reference sequence, after aligning the sequences and introducing gaps, if necessary, to achieve the maximum percent sequence identity.
- Alignment for purposes of determining percent sequence identity can be achieved in various ways that are within the skill in the art, for instance, using publicly available computer software such as BLAST, BLAST-2, ALIGN, ALIGN-2 or Megalign (DNASTAR) software. Appropriate parameters for measuring alignment, including any algorithms needed to achieve maximal alignment over the full-length of the sequences being compared can be determined by known methods.
- sequence comparisons typically one sequence acts as a reference sequence, to which test sequences are compared.
- test and reference sequences are entered into a computer, subsequence coordinates are designated, if necessary, and sequence algorithm program parameters are designated.
- sequence algorithm program parameters Preferably, default program parameters can be used, or alternative parameters can be designated.
- sequence comparison algorithm then calculates the percent sequence identities for the test sequences relative to the reference sequence, based on the program parameters.
- BLAST and BLAST 2.0 algorithms are described in Altschul et al. (1977) Nuc. Acids Res. 25:3389-3402, and Altschul et al. (1990) J. Mol. Biol. 215:403-410, respectively.
- Software for performing BLAST analyses is publicly available through the National Center for Biotechnology Information
- HSPs high scoring sequence pairs
- Cumulative scores are calculated using, for nucleotide sequences, the parameters M (reward score for a pair of matching residues; always >0) and N (penalty score for mismatching residues; always ⁇ 0).
- a scoring matrix is used to calculate the cumulative score. Extension of the word hits in each direction are halted when: the cumulative alignment score falls off by the quantity X from its maximum achieved value; the cumulative score goes to zero or below, due to the accumulation of one or more negative-scoring residue alignments; or the end of either sequence is reached.
- the BLAST algorithm parameters W, T, and X determine the sensitivity and speed of the alignment.
- W wordlength
- E expectation
- the BLAST algorithm also performs a statistical analysis of the similarity between two sequences (see, e.g., Karlin and Altschul (1993) Proc. Natl. Acad. Sci. USA 90:5873-5787).
- One measure of similarity provided by the BLAST algorithm is the smallest sum probability (P(N)), which provides an indication of the probability by which a match between two nucleotide or amino acid sequences would occur by chance.
- P(N) the smallest sum probability
- a nucleic acid is considered similar to a reference sequence if the smallest sum probability in a comparison of the test nucleic acid to the reference nucleic acid is less than about 0.2, more preferably less than about 0.01.
- the term“gene” or“gene sequence” refers to the coding sequence or control sequence, or fragments thereof.
- a gene may include any combination of coding sequence and control sequence, or fragments thereof.
- a “gene” as referred to herein may be all or part of a native gene.
- a polynucleotide sequence as referred to herein may be used interchangeably with the term “gene”, or may include any coding sequence, non-coding sequence or control sequence, fragments thereof, and combinations thereof.
- the term “gene” or“gene sequence” includes, for example, control sequences upstream of the coding sequence (for example, the ribosome binding site).
- culture refers to the intentional growth, propagation, proliferation, and/or enablement of metabolism, catabolism, and/or anabolism of one or more cells (e.g., bacteria such as Bacillus cereus).
- cells e.g., bacteria such as Bacillus cereus.
- proliferation examples include production by an organism of a polyketide of interest.
- Culture does not refer to the growth or propagation of microorganisms in nature or otherwise without human intervention.
- growth means an increase in cell size, total cellular contents, and/or cell mass or weight of a cell (e.g., bacteria such as Bacillus cereus).
- A“growth media” or“growth medium” as used herein can be a solid, powder, or liquid mixture which comprises all or substantially all of the nutrients necessary to support the growth of cells, such as bacterial cells; various nutrient compositions are preferably prepared when particular species are being cultured. Amino acids,
- the growth medium is liquid.
- the growth medium is a production medium (for example, medium optionally containing higher concentrations of glucose and/or altered concentrations of nitrogen).
- a polynucleotide sequence is“heterologous” to a second polynucleotide sequence if it originates from a foreign species, or, if from the same species, is modified by human action from its original form.
- a promoter operably linked to a heterologous coding sequence refers to a coding sequence from a species different from that from which the promoter was derived, or, if from the same species, a coding sequence which is different from naturally occurring allelic variants.
- these methods can comprise (i) contacting a primary alcohol defined by Formula I below
- R 1 is selected from the group consisting of Ci-io alkyl, CHO heteroalkyl, C2-10 alkenyl, C2-10 heteroalkenyl, C2-10 alkynyl, C2-10 heteroalkynyl, C3-10 cycloalkyl, 6-10 membered aryl, 5-10 membered heteroaryl, 4-10 membered heterocycloalkyl, C3-10 cycloalkyl-Ci-4 alkylene, C3-io cycloalkyl-Ci-4 heteroalkylene, 4-10 membered
- R 1 is selected from the group consisting of hydrogen, Ci-10 alkyl, Ci-10 heteroalkyl, C2-10 alkenyl, C2-10 heteroalkenyl, C2-10 alkynyl, C2-10 heteroalkynyl, C3-10 cycloalkyl, 6-10 membered aryl, 5-10 membered heteroaryl, 4-10 membered heterocycloalkyl, C3-10 cycloalkyl-C 1-4 alkylene, C3-io cycloalkyl-Ci-4 hetero
- heterocycloalkyl-C 1-4 alkylene 4-10 membered heterocycloalkyl-C 1-4 heteroalkylene, 6- 10 membered aryl-C 1-4 alkylene, 6-10 membered aryl-C 1-4 heteroalky lene, 5-10 membered heteroaryl-Ci-4 alkylene, and 5-10 membered heteroaryl-Ci-4 heteroalkylene, each optionally substituted with 1, 2, 3, or 4 independently selected R x groups; and each R x , when present, is independently selected from OH, NO2, CN, halo, Ci- 6 alkyl, C2-6 alkenyl, C2-6 alkynyl, CM haloalkyl, Ci- 6 alkoxy, Ci- 6 haloalkoxy, cyano-Ci-3 alkyl, HO- C1-3 alkyl, amino, Ci- 6 alkylamino, di(Ci- 6 alkyl)amino, thio, Ci- 6 alkylthio,
- R 1 , R 1 , and R x are as defined above with respect to Formula I and PP represents a pyrophosphate group.
- Phosphatases that exhibit bidirectional activity are known in the art. Such enzymes are known in the art, and classified under Enzyme Commission (EC) numbers 3.1 and 3.2.
- the phosphatase can comprise a non-specific acid phosphatase (e.g., an enzyme classified under EC number 3.1.3.2).
- EC Enzyme Commission
- the phosphatase can comprise PhoN. In certain embodiments, the phosphatase can comprise PhoC.
- the kinase can comprise a kinase that uses a phosphate acceptor.
- Such enzymes are classified under EC numbers 2.7.4, and include
- phosphomevalonate kinases adenylate kinases, nucleoside-phosphate kinases, nucleoside-diphosphate kinases, phosphomethylpyrimidine kinases, guanylate kinases, dTMP kinases, nucleoside-triphosphate-adenylate kinases, (deoxy) adenylate kinases, T2- induced deoxynucleotide kinases, (deoxy)nucleoside-phosphate kinases, cytidylate kinases, thiamine-diphosphate kinases, thiamine-phosphate kinases, 3-phosphoglyceroyl- phosphate— polyphosphate phosphotransferases, famesyl-diphosphate kinases, 5- methyldeoxycytidine-5'-phosphate kinases, dolichyl-diphosphate— polyphosphate phosphotransferases, in
- the kinase can comprise isopentenyl phosphate kinase (IPK).
- IPK isopentenyl phosphate kinase
- the phosphatase, the kinase, or a combination thereof can comprise a mutant enzyme engineered to increase substrate promiscuity , improve enzyme activity, increase enzyme specificity with respect to a particular substrate, or a combination thereof.
- the primary alcohol defined by Formula I is not one of the following
- steps (i) and (ii) can be performed in a cell-free system.
- the method can further comprise recovering the isoprenoid subunit from the cell-free system.
- steps (i) and (ii) can be performed in a cell comprising genes encoding for the phosphatase that exhibits bidirectional activity and the kinase.
- the cell can be engineered to express (or overexpress) the genes encoding for the phosphatase and the kinase.
- Also provided are methods for synthesizing an isoprenoid subunit that comprise (i) providing a cell comprising genes encoding for (1) a phosphatase that exhibits bidirectional activity, and (2) a kinase; and (ii) incubating the cell in a fermentation broth with ATP and a primary alcohol defined by Formula I below
- R 1 is selected from the group consisting of Ci-io alkyl, C HO heteroalkyl, C 2-10 alkenyl, C 2-10 heteroalkenyl, C 2-10 alkynyl, C 2-10 heteroalkynyl, C 3-10 cycloalkyl, 6-10 membered aryl, 5-10 membered heteroaryl, 4-10 membered heterocycloalkyl, C 3-10 cycloalkyl-Ci- 4 alkylene, C 3-i o cycloalkyl-Ci- 4 heteroalkylene, 4-10 membered
- R 1 is selected from the group consisting of hydrogen, Ci- 10 alkyl, Ci- 10 heteroalkyl, C 2-10 alkenyl, C 2-10 heteroalkenyl, C 2-10 alkynyl, C 2-10 heteroalkynyl, C 3-10 cycloalkyl, 6-10 membered aryl, 5-10 membered heteroaryl, 4-10 membered heterocycloalkyl, C3-10 cycloalkyl-Ci-4 alkylene, C3-io cycloalkyl
- heterocycloalkyl-Ci-4 alkylene 4-10 membered heterocycloalkyl-C 1-4 heteroalkylene, 6- 10 membered aryl-Ci-4 alkylene, 6-10 membered aryl-C 1-4 heteroalky lene, 5-10 membered heteroaryl-Ci-4 alkylene, and 5-10 membered heteroaryl-Ci-4 heteroalkylene, each optionally substituted with 1, 2, 3, or 4 independently selected R x groups; and each R x , when present, is independently selected from OH, NO2, CN, halo, Ci- 6 alkyl, C2-6 alkenyl, C2-6 alkynyl, CM haloalkyl, Ci- 6 alkoxy, Ci- 6 haloalkoxy, cyano-Ci-3 alkyl, HO- C1-3 alkyl, amino, Ci- 6 alkylamino, di(Ci- 6 alkyl)amino, thio, Ci- 6 alkylthio,
- the phosphatase can comprise a non-specific acid phosphatase (e.g., an enzyme classified under EC number 3.E3.2).
- the phosphatase can comprise PhoN.
- the phosphatase can comprise PhoC.
- the kinase can comprise a kinase that uses a phosphate acceptor.
- Such enzymes are classified under EC numbers 2.7.4, and include
- phosphomevalonate kinases adenylate kinases, nucleoside-phosphate kinases, nucleoside-diphosphate kinases, phosphomethylpyrimidine kinases, guanylate kinases, dTMP kinases, nucleoside-triphosphate-adenylate kinases, (deoxy) adenylate kinases, T2- induced deoxynucleotide kinases, (deoxy)nucleoside-phosphate kinases, cytidylate kinases, thiamine-diphosphate kinases, thiamine-phosphate kinases, 3-phosphoglyceroyl- phosphate— polyphosphate phosphotransferases, famesyl-diphosphate kinases, 5- methyldeoxycytidine-5'-phosphate kinases, dolichyl-diphosphate— polyphosphate phosphotransferases, in
- the kinase can comprise isopentenyl phosphate kinase (IPK).
- the phosphatase, the kinase, or a combination thereof can comprise a mutant enzyme engineered to increase substrate promiscuity , improve enzyme activity, increase enzyme specificity with respect to a particular substrate, or a combination thereof.
- the primary alcohol defined by Formula I is not one of the following
- Also provided are methods for synthesizing an isoprenoid subunit that comprise (i) contacting a primary alcohol defined by Formula I below
- R 1 is selected from the group consisting of Ci-io alkyl, C HO heteroalkyl, C 2-10 alkenyl, C 2-10 heteroalkenyl, C 2-10 alkynyl, C 2-10 heteroalkynyl, C 3-10 cycloalkyl, 6-10 membered aryl, 5-10 membered heteroaryl, 4-10 membered heterocycloalkyl, C 3-10 cycloalkyl-Ci- 4 alkylene, C 3-i o cycloalkyl-Ci- 4 heteroalkylene, 4-10 membered
- R 1 is selected from the group consisting of hydrogen, Ci- 10 alkyl, Ci- 10 heteroalkyl, C 2-10 alkenyl, C 2-10 heteroalkenyl, C 2-10 alkynyl, C 2-10 heteroalkynyl, C 3-10 cycloalkyl, 6-10 membered aryl, 5-10 membered heteroaryl, 4-10 membered heterocycloalkyl, C 3-10 cycloalkyl-C 1-4 alkylene, C 3-i o cycloalkyl,
- R 1 , R 1 , and R x are as defined above with respect to Formula I and P represents a phosphate group; and (ii) contacting the phosphate defined by Formula II with a second kinase in the presence of ATP to generate the isoprenoid subunit defined by Formula III below
- the kinases can comprise any suitable kinases employ small molecules as acceptors. Such enzymes are classified under EC numbers 2.7.1-2.7.9, and include phosphotransferases with an alcohol group as acceptor, phosphotransferases with a carboxy group as acceptor, phosphotransferases with a nitrogenous group as acceptor, phosphotransferases with a phosphate group as acceptor, phosphotransferases with regeneration of donors, apparently catalyzing intramolecular transfers,
- the kinases are kinases that are expressed in soluble form (e.g., in E. coli and/or yeast).
- the first kinase can comprise a kinase that uses an alcohol acceptor.
- Such enzymes are classified under EC numbers 2.7.1, and include hexokinases, glucokinases, ketohexokinases, fmctokinases, rhamnulokinases, galactokinases, mannokinases, glucosamine kinases, phosphoglucokinases, 6-phosphofmctokinases, gluconokinases, dehydro gluconokinases, sedoheptulokinases, ribokinases, ribulokinases, xylulokinases, phosphoribokinases, phosphoribulokinases, adenosine kinases, thymidine kinases, ribosylnicotinamide kinases, NAD+ kinases, dephospho-CoA kinases, a
- glucuronokinases galacturonokinases, 2-dehydro-3-deoxygluconokinases, L- arabinokinases, D-ribulokinases, uridine kinases, hydroxymethylpyrimidine kinases, hydroxyethylthiazole kinases, L-fuculokinases, fucokinases, L-xylulokinases, D- arabinokinases, allose kinases, 1-phosphofructokinases, 2-dehydro-3- deoxygalactonokinases, N-acetylglucosamine kinases, N-acylmannosamine kinases, acyl- phosphate— hexose phosphotransferases, phosphoramidate-hexose phosphotransferases, polyphosphate-glucose phosphotransferases, inositol 3-kinases, scyllo-inosamine 4-
- phosphotransferases hydroxylysine kinases, ethanolamine kinases, pseudouridine kinases, alkylglycerone kinases, b-glucoside kinases, NADH kinases, streptomycin 3"- kinases, dihydrostreptomycin-6-phosphate 3'a-kinases, thiamine kinases, diphosphate— fmctose-6-phosphate 1 -phosphotransferases, sphinganine kinases, 5-dehydro-2- deoxygluconokinases, alkylglycerol kinases, acylglycerol kinases, kanamycin kinases, S- methyl-5-thioribose kinases, tagatose kinases, hamamelose kinases, viomycin kinases, 6- phosphofmcto-2-kinases, glucose- 1,6-bisphosphate synthases, di
- the first kinase can be chosen from a hexokinase, a glucokinase, a galactokinase, a fmctokinase, a glycerol kinase, a choline kinase, a pantetheine kinase, a mevalonate kinase, a pyruvate kinase, an undecaprenol kinase, an ethanolamine kinase, a diacylglycerol kinase, a dolichol kinase, a macrolide 2’ -kinase, a ceramide kinase, or a combination thereof.
- the second kinase can comprise a kinase that uses a phosphate acceptor.
- Such enzymes are classified under EC numbers 2.7.4, and include phosphomevalonate kinases, adenylate kinases, nucleoside-phosphate kinases, nucleoside-diphosphate kinases, phosphomethylpyrimidine kinases, guanylate kinases, dTMP kinases, nucleoside-triphosphate-adenylate kinases, (deoxy) adenylate kinases, T2- induced deoxynucleotide kinases, (deoxy)nucleoside-phosphate kinases, cytidylate kinases, thiamine-diphosphate kinases, thiamine-phosphate kinases, 3-phosphoglyceroyl- phosphate— polyphosphate phosphotransferases, famesyl-diphosphate—
- the second kinase can be chosen from a polyphosphate kinase, a phosphomevalonate kinase, a phosphomethylpyrimidine kinase, a famesyl-diphosphate kinase, or a combination thereof.
- the second kinase can comprise isopentenyl phosphate kinase (IPK).
- the first kinase, the second kinase, or a combination thereof comprise a mutant enzyme engineered to increase substrate promiscuity , improve enzyme activity, increase enzyme specificity with respect to a particular substrate, or a combination thereof.
- steps (i) and (ii) can be performed in a cell-free system.
- the method can further comprise recovering the isoprenoid subunit from the cell-free system.
- steps (i) and (ii) can be performed in a cell comprising genes encoding for the first kinase and the second kinase.
- the cell can be engineered to express (or overexpress) the genes encoding for the first kinase and/or the second kinase.
- Also provided are methods for synthesizing an isoprenoid subunit that comprise (i) providing a cell comprising genes encoding for a first kinase and a second kinase; (ii) incubating the cell in a fermentation broth with ATP and a primary alcohol defined by Formula I below
- R 1 is selected from the group consisting of Ci-io alkyl, C HO heteroalkyl, C2-10 alkenyl, C2-10 heteroalkenyl, C2-10 alkynyl, C2-10 heteroalkynyl, C3-10 cycloalkyl, 6-10 membered aryl, 5-10 membered heteroaryl, 4-10 membered heterocycloalkyl, C3-10 cycloalkyl-Ci-4 alkylene, C3-io cycloalkyl-Ci-4heteroalkylene, 4-10 membered
- R 1 is selected from the group consisting of hydrogen, Ci-10 alkyl, Ci-10 heteroalkyl, C2-10 alkenyl, C2-10 heteroalkenyl, C2-10 alkynyl, C2-10 heteroalkynyl, C3-10 cycloalkyl, 6-10 membered aryl, 5-10 membered heteroaryl, 4-10 membered heterocycloalkyl, C3-10 cycloalkyl-C 1-4 alkylene, C3-io cycloalkyl-Ci-4 alkylene, C3-io cycloalkyl-Ci
- heterocycloalkyl-C 1-4 alkylene 4-10 membered heterocycloalkyl-C 1-4 heteroalkylene, 6- 10 membered aryl-C 1-4 alkylene, 6-10 membered aryl-C 1-4 heteroalky lene, 5-10 membered heteroaryl-Ci-4 alkylene, and 5-10 membered heteroaryl-Ci-4heteroalkylene, each optionally substituted with 1, 2, 3, or 4 independently selected R x groups; and each R x , when present, is independently selected from OH, NO2, CN, halo, Ci- 6 alkyl, C2-6 alkenyl, C2-6 alkynyl, C M haloalkyl, Ci- 6 alkoxy, Ci- 6 haloalkoxy, cyano-Ci-3 alkyl, HO- C1-3 alkyl, amino, Ci- 6 alkylamino, di(Ci- 6 alkyl)amino, thio, Ci- 6 alkylthi
- the kinases can comprise any suitable kinases employ small molecules as acceptors. Such enzymes are classified under EC numbers 2.7.1-2.7.9, and include phosphotransferases with an alcohol group as acceptor, phosphotransferases with a carboxy group as acceptor, phosphotransferases with a nitrogenous group as acceptor, phosphotransferases with a phosphate group as acceptor, phosphotransferases with regeneration of donors, apparently catalyzing intramolecular transfers,
- the kinases are kinases that are expressed in soluble form (e.g., in E. coli and/or yeast).
- the first kinase can comprise a kinase that uses an alcohol acceptor.
- Such enzymes are classified under EC numbers 2.7.1, and include hexokinases, glucokinases, ketohexokinases, fmctokinases, rhamnulokinases, galactokinases, mannokinases, glucosamine kinases, phosphoglucokinases, 6-phosphofmctokinases, gluconokinases, dehydro gluconokinases, sedoheptulokinases, ribokinases, ribulokinases, xylulokinases, phosphoribokinases, phosphoribulokinases, adenosine kinases, thymidine kinases, ribosylnicotinamide kinases, NAD+ kinases, dephospho-CoA kinases, a
- glucuronokinases galacturonokinases, 2-dehydro-3-deoxygluconokinases, L- arabinokinases, D-ribulokinases, uridine kinases, hydroxymethylpyrimidine kinases, hydroxyethylthiazole kinases, L-fuculokinases, fucokinases, L-xylulokinases, D- arabinokinases, allose kinases, 1-phosphofructokinases, 2-dehydro-3- deoxygalactonokinases, N-acetylglucosamine kinases, N-acylmannosamine kinases, acyl- phosphate— hexose phosphotransferases, phosphoramidate-hexose phosphotransferases, polyphosphate-glucose phosphotransferases, inositol 3-kinases, scyllo-inosamine 4-
- phosphotransferases hydroxylysine kinases, ethanolamine kinases, pseudouridine kinases, alkylglycerone kinases, b-glucoside kinases, NADH kinases, streptomycin 3"- kinases, dihydrostreptomycin-6-phosphate 3'a-kinases, thiamine kinases, diphosphate— fmctose-6-phosphate 1 -phosphotransferases, sphinganine kinases, 5-dehydro-2- deoxygluconokinases, alkylglycerol kinases, acylglycerol kinases, kanamycin kinases, S- methyl-5-thioribose kinases, tagatose kinases, hamamelose kinases, viomycin kinases, 6- phosphofmcto-2-kinases, glucose- 1,6-bisphosphate synthases, di
- the first kinase can be chosen from a hexokinase, a glucokinase, a galactokinase, a fmctokinase, a glycerol kinase, a choline kinase, a pantetheine kinase, a mevalonate kinase, a pyruvate kinase, an undecaprenol kinase, an ethanolamine kinase, a diacylglycerol kinase, a dolichol kinase, a macrolide 2’ -kinase, a ceramide kinase, or a combination thereof.
- the second kinase can comprise a kinase that uses a phosphate acceptor.
- Such enzymes are classified under EC numbers 2.7.4, and include phosphomevalonate kinases, adenylate kinases, nucleoside-phosphate kinases, nucleoside-diphosphate kinases, phosphomethylpyrimidine kinases, guanylate kinases, dTMP kinases, nucleoside-triphosphate-adenylate kinases, (deoxy) adenylate kinases, T2- induced deoxynucleotide kinases, (deoxy)nucleoside-phosphate kinases, cytidylate kinases, thiamine-diphosphate kinases, thiamine-phosphate kinases, 3-phosphoglyceroyl- phosphate— polyphosphate phosphotransferases, famesyl-diphosphate—
- the second kinase can be chosen from a polyphosphate kinase, a phosphomevalonate kinase, a phosphomethylpyrimidine kinase, a famesyl-diphosphate kinase, or a combination thereof.
- the second kinase can comprise isopentenyl phosphate kinase (IPK).
- the first kinase, the second kinase, or a combination thereof comprise a mutant enzyme engineered to increase substrate promiscuity , improve enzyme activity, increase enzyme specificity with respect to a particular substrate, or a combination thereof.
- Methods can further comprise introducing the isoprenoid subunit into a natural or artificial isoprenoid biosynthetic pathway to synthesize an isoprenoid. This can be done performed within a cell or in a cell-free system.
- Also provided are methods for synthesizing an isoprenoid subunit that comprise (i) contacting a primary alcohol defined by Formula I below
- R 1 is selected from the group consisting of Ci-io alkyl, CHO heteroalkyl, C2-10 alkenyl, C2-10 heteroalkenyl, C2-10 alkynyl, C2-10 heteroalkynyl, C3-10 cycloalkyl, 6-10 membered aryl, 5-10 membered heteroaryl, 4-10 membered heterocycloalkyl, C3-10 cycloalkyl-Ci-4 alkylene, C3-io cycloalkyl-Ci-4heteroalkylene, 4-10 membered
- R 1 is selected from the group consisting of hydrogen, Ci-10 alkyl, Ci-10 heteroalkyl, C2-10 alkenyl, C2-10 heteroalkenyl, C2-10 alkynyl, C2-10 heteroalkynyl, C3-10 cycloalkyl, 6-10 membered aryl, 5-10 membered heteroaryl, 4-10 membered heterocycloalkyl, C3-10 cycloalkyl-C 1-4 alkylene, C3-io cycloalkyl-Ci-4 alkylene, C3-io cycloalkyl-Ci
- heterocycloalkyl-C 1-4 alkylene 4-10 membered heterocycloalkyl-C 1-4 heteroalkylene, 6- 10 membered aryl-C 1-4 alkylene, 6-10 membered aryl-C 1-4 heteroalky lene, 5-10 membered heteroaryl-Ci-4 alkylene, and 5-10 membered heteroaryl-Ci-4heteroalkylene, each optionally substituted with 1, 2, 3, or 4 independently selected R x groups; and each R x , when present, is independently selected from OH, NO2, CN, halo, Ci- 6 alkyl, C2-6 alkenyl, C2-6 alkynyl, C M haloalkyl, Ci- 6 alkoxy, Ci- 6 haloalkoxy, cyano-Ci-3 alkyl, HO- C1-3 alkyl, amino, Ci- 6 alkylamino, di(Ci- 6 alkyl)amino, thio, Ci- 6 alkylthi
- R 1 , R 1 , and R x are as defined above with respect to Formula I and P represents a phosphate group; and (ii) contacting the phosphate defined by Formula II with a second kinase in the presence of ATP to generate the isoprenoid subunit defined by Formula III below
- R 1 , R 1 , and R x are as defined above with respect to Formula I and PP represents a pyrophosphate group; wherein the first kinase, the second kinase, or a combination thereof comprise a mutant enzyme engineered to increase substrate promiscuity , improve enzyme activity, increase enzyme specificity with respect to a particular substrate, or a combination thereof.
- the kinases can comprise any suitable kinases employ small molecules as acceptors. Such enzymes are classified under EC numbers 2.7.1-2.7.9, and include phosphotransferases with an alcohol group as acceptor, phosphotransferases with a carboxy group as acceptor, phosphotransferases with a nitrogenous group as acceptor, phosphotransferases with a phosphate group as acceptor, phosphotransferases with regeneration of donors, apparently catalyzing intramolecular transfers,
- the kinases are kinases that are expressed in soluble form (e.g., in E. coli and/or yeast).
- the first kinase can comprise a kinase that uses an alcohol acceptor.
- Such enzymes are classified under EC numbers 2.7.1, and include hexokinases, glucokinases, ketohexokinases, fructokinases, rhamnulokinases, galactokinases, mannokinases, glucosamine kinases, phosphoglucokinases, 6-phosphofructokinases, gluconokinases, dehydro gluconokinases, sedoheptulokinases, ribokinases, ribulokinases, xylulokinases, phosphoribokinases, phosphoribulokinases, adenosine kinases, thymidine kinases, ribosylnicotinamide kinases, NAD+ kinases, dephospho-CoA kinases, adenylyl
- glucuronokinases galacturonokinases, 2-dehydro-3-deoxygluconokinases, L- arabinokinases, D-ribulokinases, uridine kinases, hydroxymethylpyrimidine kinases, hydroxyethylthiazole kinases, L-fuculokinases, fucokinases, L-xylulokinases, D- arabinokinases, allose kinases, 1-phosphofructokinases, 2-dehydro-3- deoxygalactonokinases, N-acetylglucosamine kinases, N-acylmannosamine kinases, acyl- phosphate— hexose phosphotransferases, phosphoramidate-hexose phosphotransferases, polyphosphate-glucose phosphotransferases, inositol 3-kinases, scyllo-inosamine 4-
- phosphotransferases hydroxylysine kinases, ethanolamine kinases, pseudouridine kinases, alkylglycerone kinases, b-glucoside kinases, NADH kinases, streptomycin 3"- kinases, dihydrostreptomycin-6-phosphate 3'a-kinases, thiamine kinases, diphosphate— fructose-6-phosphate 1 -phosphotransferases, sphinganine kinases, 5-dehydro-2- deoxygluconokinases, alkylglycerol kinases, acylglycerol kinases, kanamycin kinases, S- methyl-5-thioribose kinases, tagatose kinases, hamamelose kinases, viomycin kinases, 6- phosphofructo-2-kinases, glucose- 1,6-bisphosphate synthases, diacylgly
- the first kinase can be chosen from a hexokinase, a glucokinase, a galactokinase, a fmctokinase, a glycerol kinase, a choline kinase, a pantetheine kinase, a mevalonate kinase, a pyruvate kinase, an undecaprenol kinase, an ethanolamine kinase, a diacylglycerol kinase, a dolichol kinase, a macrolide 2’ -kinase, a ceramide kinase, or a combination thereof.
- the second kinase can comprise a kinase that uses a phosphate acceptor.
- Such enzymes are classified under EC numbers 2.7.4, and include phosphomevalonate kinases, adenylate kinases, nucleoside-phosphate kinases, nucleoside-diphosphate kinases, phosphomethylpyrimidine kinases, guanylate kinases, dTMP kinases, nucleoside-triphosphate-adenylate kinases, (deoxy) adenylate kinases, T2- induced deoxynucleotide kinases, (deoxy)nucleoside-phosphate kinases, cytidylate kinases, thiamine-diphosphate kinases, thiamine-phosphate kinases, 3-phosphoglyceroyl- phosphate— polyphosphate phosphotransferases, famesyl-diphosphate—
- the second kinase can be chosen from a polyphosphate kinase, a phosphomevalonate kinase, a phosphomethylpyrimidine kinase, a famesyl-diphosphate kinase, or a combination thereof.
- the second kinase can comprise isopentenyl phosphate kinase (IPK).
- the primary alcohol defined by Formula I is not one of the following
- steps (i) and (ii) can be performed in a cell-free system.
- the method can further comprise recovering the isoprenoid subunit from the cell-free system.
- steps (i) and (ii) can be performed in a cell comprising genes encoding for the first kinase and the second kinase.
- the cell can be engineered to express (or overexpress) the genes encoding for the first kinase and/or the second kinase.
- Methods can further comprise introducing the isoprenoid subunit into a natural or artificial isoprenoid biosynthetic pathway to synthesize an isoprenoid. This can be done performed within a cell or in a cell-free system.
- Also provided are methods for synthesizing an isoprenoid subunit that comprise (i) providing a cell comprising genes encoding for a first kinase and a second kinase, wherein the first kinase, the second kinase, or a combination thereof comprise a mutant enzyme engineered to increase substrate promiscuity , improve enzyme activity, increase enzyme specificity with respect to a particular substrate, or a combination thereof; (ii) incubating the cell in a fermentation broth with ATP and a primary alcohol defined by Formula I below
- R 1 is selected from the group consisting of Ci-io alkyl, CHO heteroalkyl, C2-10 alkenyl, C2-10 heteroalkenyl, C2-10 alkynyl, C2-10 heteroalkynyl, C3-10 cycloalkyl, 6-10 membered aryl, 5-10 membered heteroaryl, 4-10 membered heterocycloalkyl, C3-10 cycloalkyl-Ci-4 alkylene, C3-io cycloalkyl-Ci-4 heteroalkylene, 4-10 membered
- R 1 is selected from the group consisting of hydrogen, Ci-10 alkyl, Ci-10 heteroalkyl, C2-10 alkenyl, C2-10 heteroalkenyl, C2-10 alkynyl, C2-10 heteroalkynyl, C3-10 cycloalkyl, 6-10 membered aryl, 5-10 membered heteroaryl, 4-10 membered heterocycloalkyl, C3-10 cycloalkyl-C 1-4 alkylene, C3-io cycloalkyl-Ci-4 hetero
- heterocycloalkyl-C 1-4 alkylene 4-10 membered heterocycloalkyl-C 1-4 heteroalkylene, 6- 10 membered aryl-C 1-4 alkylene, 6-10 membered aryl-C 1-4 heteroalky lene, 5-10 membered heteroaryl-Ci-4 alkylene, and 5-10 membered heteroaryl-Ci-4 heteroalkylene, each optionally substituted with 1, 2, 3, or 4 independently selected R x groups; and each R x , when present, is independently selected from OH, NO2, CN, halo, Ci- 6 alkyl, C2-6 alkenyl, C2-6 alkynyl, CM haloalkyl, Ci- 6 alkoxy, Ci- 6 haloalkoxy, cyano-Ci-3 alkyl, HO- C1-3 alkyl, amino, Ci- 6 alkylamino, di(Ci- 6 alkyl)amino, thio, Ci- 6 alkylthio,
- the kinases can comprise any suitable kinases employ small molecules as acceptors. Such enzymes are classified under EC numbers 2.7.1-2.7.9, and include phosphotransferases with an alcohol group as acceptor, phosphotransferases with a carboxy group as acceptor, phosphotransferases with a nitrogenous group as acceptor, phosphotransferases with a phosphate group as acceptor, phosphotransferases with regeneration of donors, apparently catalysing intramolecular transfers, diphosphotransferases, nucleotidyltransferases, transferases for other substituted phosphate groups, and phosphotransferases with paired acceptors (dikinases).
- the kinases are kinases that are expressed in soluble form (e.g., in E. coli and/or yeast).
- the first kinase can comprise a kinase that uses an alcohol acceptor.
- Such enzymes are classified under EC numbers 2.7.1, and include hexokinases, glucokinases, ketohexokinases, fmctokinases, rhamnulokinases, galactokinases, mannokinases, glucosamine kinases, phosphoglucokinases, 6-phosphofmctokinases, gluconokinases, dehydro gluconokinases, sedoheptulokinases, ribokinases, ribulokinases, xylulokinases, phosphoribokinases, phosphoribulokinases, adenosine kinases, thymidine kinases, ribosylnicotinamide kinases, NAD+ kinases, dephospho-CoA kinases, a
- glucuronokinases galacturonokinases, 2-dehydro-3-deoxygluconokinases, L- arabinokinases, D-ribulokinases, uridine kinases, hydroxymethylpyrimidine kinases, hydroxyethylthiazole kinases, L-fuculokinases, fucokinases, L-xylulokinases, D- arabinokinases, allose kinases, 1-phosphofructokinases, 2-dehydro-3- deoxygalactonokinases, N-acetylglucosamine kinases, N-acylmannosamine kinases, acyl- phosphate— hexose phosphotransferases, phosphoramidate-hexose phosphotransferases, polyphosphate-glucose phosphotransferases, inositol 3-kinases, scyllo-inosamine 4-
- phosphotransferases hydroxylysine kinases, ethanolamine kinases, pseudouridine kinases, alkylglycerone kinases, b-glucoside kinases, NADH kinases, streptomycin 3"- kinases, dihydrostreptomycin-6-phosphate 3'a-kinases, thiamine kinases, diphosphate— fmctose-6-phosphate 1 -phosphotransferases, sphinganine kinases, 5-dehydro-2- deoxygluconokinases, alkylglycerol kinases, acylglycerol kinases, kanamycin kinases, S- methyl-5-thioribose kinases, tagatose kinases, hamamelose kinases, viomycin kinases, 6- phosphofmcto-2-kinases, glucose- 1,6-bisphosphate synthases, di
- the first kinase can be chosen from a hexokinase, a glucokinase, a galactokinase, a fmctokinase, a glycerol kinase, a choline kinase, a pantetheine kinase, a mevalonate kinase, a pyruvate kinase, an undecaprenol kinase, an ethanolamine kinase, a diacylglycerol kinase, a dolichol kinase, a macrolide 2’ -kinase, a ceramide kinase, or a combination thereof.
- the second kinase can comprise a kinase that uses a phosphate acceptor.
- Such enzymes are classified under EC numbers 2.7.4, and include phosphomevalonate kinases, adenylate kinases, nucleoside-phosphate kinases, nucleoside-diphosphate kinases, phosphomethylpyrimidine kinases, guanylate kinases, dTMP kinases, nucleoside-triphosphate-adenylate kinases, (deoxy) adenylate kinases, T2- induced deoxynucleotide kinases, (deoxy)nucleoside-phosphate kinases, cytidylate kinases, thiamine-diphosphate kinases, thiamine-phosphate kinases, 3-phosphoglyceroyl- phosphate— polyphosphate phosphotransferases, famesyl-diphosphate—
- the second kinase can be chosen from a polyphosphate kinase, a phosphomevalonate kinase, a phosphomethylpyrimidine kinase, a famesyl-diphosphate kinase, or a combination thereof.
- the second kinase can comprise isopentenyl phosphate kinase (IPK).
- the primary alcohol defined by Formula I is not one of the following
- Methods can further comprise introducing the isoprenoid subunit into a natural or artificial isoprenoid biosynthetic pathway to synthesize an isoprenoid. This can be done performed within a cell or in a cell-free system.
- Also provided are methods for synthesizing an isoprenoid subunit that comprise (i) contacting a primary alcohol defined by Formula I below
- R 1 is selected from the group consisting of Ci-io alkyl, C HO heteroalkyl, C 2-10 alkenyl, C 2-10 heteroalkenyl, C 2-10 alkynyl, C 2-10 heteroalkynyl, C 3-10 cycloalkyl, 6-10 membered aryl, 5-10 membered heteroaryl, 4-10 membered heterocycloalkyl, C 3-10 cycloalkyl-Ci- 4 alkylene, C 3-i o cycloalkyl-Ci- 4 heteroalkylene, 4-10 membered
- R 1 is selected from the group consisting of hydrogen, Ci-10 alkyl, Ci-10 heteroalkyl, C2-10 alkenyl, C2-10 heteroalkenyl, C2-10 alkynyl, C2-10 heteroalkynyl, C3-10 cycloalkyl, 6-10 membered aryl, 5-10 membered heteroaryl, 4-10 membered heterocycloalkyl, C3-10 cycloalkyl-C 1-4 alkylene, C3-io cycloalkyl-Ci-4 hetero
- heterocycloalkyl-C 1-4 alkylene 4-10 membered heterocycloalkyl-C 1-4 heteroalkylene, 6- 10 membered aryl-C 1-4 alkylene, 6-10 membered aryl-C 1-4 heteroalky lene, 5-10 membered heteroaryl-Ci-4 alkylene, and 5-10 membered heteroaryl-Ci-4 heteroalkylene, each optionally substituted with 1, 2, 3, or 4 independently selected R x groups; and each R x , when present, is independently selected from OH, NO2, CN, halo, Ci- 6 alkyl, C2-6 alkenyl, C2-6 alkynyl, CM haloalkyl, Ci- 6 alkoxy, Ci- 6 haloalkoxy, cyano-Ci-3 alkyl, HO- C1-3 alkyl, amino, Ci- 6 alkylamino, di(Ci- 6 alkyl)amino, thio, Ci- 6 alkylthio,
- R 1 , R 1 , and R x are as defined above with respect to Formula I and PP represents a pyrophosphate group, wherein the single enzyme comprises a phosphotransferase that can catalyze both a first phosphorylation and a second phosphorylation of the primary alcohol defined by Formula I to generate the isoprenoid subunit defined by Formula III.
- the single enzyme can comprise a phosphotransferase that uses an alcohol acceptor.
- Such enzymes are classified under EC numbers 2.7.1, and include hexokinases, glucokinases, ketohexokinases, fmctokinases, rhamnulokinases, galactokinases, mannokinases, glucosamine kinases, phosphoglucokinases, 6- phosphofructokinases, gluconokinases, dehydrogluconokinases, sedoheptulokinases, ribokinases, ribulokinases, xylulokinases, phosphoribokinases, phosphoribulokinases, adenosine kinases, thymidine kinases, ribosylnicotinamide kinases, NAD+ kinases, dephospho-CoA kinases, adenyly
- hydroxymethylpyrimidine kinases hydroxyethylthiazole kinases, L-fuculokinases, fucokinases, L-xylulokinases, D-arabinokinases, allose kinases, 1-phosphofructokinases, 2-dehydro-3-deoxygalactonokinases, N-acetylglucosamine kinases, N-acylmannosamine kinases, acyl-phosphate— hexose phosphotransferases, phosphoramidate-hexose phosphotransferases, polyphosphate-glucose phosphotransferases, inositol 3-kinases, scyllo-inosamine 4-kinases, undecaprenol kinases, 1-phosphatidylinositol 4-kinases, 1- phosphatidylinositol-4-phosphate 5-kinases, protein-Npi-phosphohist
- tetraacyldisaccharide 4'-kinases inositol-tetrakisphosphate 1-kinases, macrolide 2'- kinases, phosphatidylinositol 3-kinases, ceramide kinases, inositol-tetrakisphosphate 5- kinases, glycerol— 3-phosphate-glucose phosphotransferases, diphosphate-purine nucleoside kinases, tagatose-6-phosphate kinases, deoxynucleoside kinases, ADP- dependent phosphofmctokinases, ADP-dependent glucokinases, 4-(cytidine 5'- diphospho)-2-C-methyl-D-erythritol kinases, 1 -phosphatidylinositol- 5 -phosphate 4- kinases, 1 -phosphatidylinositol- 3 -phosphate 5-
- the first kinase can be chosen from a hexokinase, a glucokinase, a galactokinase, a fmctokinase, a glycerol kinase, a choline kinase, a pantetheine kinase, a mevalonate kinase, a pyruvate kinase, an undecaprenol kinase, an ethanolamine kinase, a diacylglycerol kinase, a dolichol kinase, a macrolide 2’-kinase, a ceramide kinase, or a combination thereof.
- the single enzyme can comprise a phosphotransferase that uses a phosphate acceptor.
- a phosphotransferase that uses a phosphate acceptor.
- Such enzymes are classified under EC numbers 2.7.4, and include polyphosphate kinases, phosphomevalonate kinases, adenylate kinases, nucleoside-phosphate kinases, nucleoside-diphosphate kinases,
- phosphomethylpyrimidine kinases guanylate kinases, dTMP kinases, nucleoside- triphosphate-adenylate kinases, (deoxy)adenylate kinases, T2-induced deoxynucleotide kinases, (deoxy)nucleoside-phosphate kinases, cytidylate kinases, thiamine-diphosphate kinases, thiamine-phosphate kinases, 3-phosphoglyceroyl-phosphate— polyphosphate phosphotransferases, famesyl-diphosphate kinases, 5-methyldeoxycytidine-5'-phosphate kinases, dolichyl-diphosphate— polyphosphate phosphotransferases, inositol- hexakisphosphate kinases, UMP kinases, ribose 1,5-bisphosphate phosphokinases, diphosphoinositol-pent
- the single enzyme can comprise isopentenyl phosphate kinase (IPK).
- IPK isopentenyl phosphate kinase
- the single enzyme can comprise a mutant enzyme engineered to increase substrate promiscuity , improve enzyme activity, increase enzyme specificity with respect to a particular substrate, or a combination thereof.
- the primary alcohol defined by Formula I is not one of the following
- steps (i) and (ii) can be performed in a cell-free system.
- the method can further comprise recovering the isoprenoid subunit from the cell-free system.
- steps (i) and (ii) can be performed in a cell comprising genes encoding for the first kinase and the second kinase.
- the cell can be engineered to express (or overexpress) the genes encoding for the first kinase and/or the second kinase.
- Methods can further comprise introducing the isoprenoid subunit into a natural or artificial isoprenoid biosynthetic pathway to synthesize an isoprenoid. This can be done performed within a cell or in a cell-free system.
- Also provided are methods for synthesizing an isoprenoid subunit that comprise (i) incubating a cell in a fermentation broth with ATP and a primary alcohol defined by Formula I below
- R 1 is selected from the group consisting of Ci-io alkyl, C HO heteroalkyl, C 2-10 alkenyl, C 2-10 heteroalkenyl, C 2-10 alkynyl, C 2-10 heteroalkynyl, C 3-10 cycloalkyl, 6-10 membered aryl, 5-10 membered heteroaryl, 4-10 membered heterocycloalkyl, C 3-10 cycloalkyl-Ci- 4 alkylene, C3-io cycloalkyl-Ci-4 heteroalkylene, 4-10 membered
- R 1 is selected from the group consisting of hydrogen, Ci-10 alkyl, Ci-10 heteroalkyl, C2-10 alkenyl, C2-10 heteroalkenyl, C2-10 alkynyl, C2-10 heteroalkynyl, C3-10 cycloalkyl, 6-10 membered aryl, 5-10 membered heteroaryl, 4-10 membered heterocycloalkyl, C3-10 cycloalkyl-C 1-4 alkylene, C3-io cycloalkyl-Ci-4 hetero
- heterocycloalkyl-C 1-4 alkylene 4-10 membered heterocycloalkyl-C 1-4 heteroalkylene, 6- 10 membered aryl-C 1-4 alkylene, 6-10 membered aryl-C 1-4 heteroalky lene, 5-10 membered heteroaryl-Ci-4 alkylene, and 5-10 membered heteroaryl-Ci-4 heteroalkylene, each optionally substituted with 1, 2, 3, or 4 independently selected R x groups; and each R x , when present, is independently selected from OH, NO2, CN, halo, Ci- 6 alkyl, C2-6 alkenyl, C2-6 alkynyl, CM haloalkyl, Ci- 6 alkoxy, Ci- 6 haloalkoxy, cyano-Ci-3 alkyl, HO- C1-3 alkyl, amino, Ci- 6 alkylamino, di(Ci- 6 alkyl)amino, thio, Ci- 6 alkylthio,
- R 1 , R 1 , and R x are as defined above with respect to Formula I and PP represents a pyrophosphate group; wherein the cell comprises a gene encoding for a
- the single enzyme can comprise a phosphotransferase that uses an alcohol acceptor.
- Such enzymes are classified under EC numbers 2.7.1, and include hexokinases, glucokinases, ketohexokinases, fmctokinases, rhamnulokinases, galactokinases, mannokinases, glucosamine kinases, phosphoglucokinases, 6- phosphofmctokinases, gluconokinases, dehydrogluconokinases, sedoheptulokinases, ribokinases, ribulokinases, xylulokinases, phosphoribokinases, phosphoribulokinases, adenosine kinases, thymidine kinases, ribosylnicotinamide kinases, NAD+ kinases, dephospho-CoA kinases, adenylyl- sulfate kinases, riboflavin kinases, ery
- hydroxymethylpyrimidine kinases hydroxyethylthiazole kinases, L-fuculokinases, fucokinases, L-xylulokinases, D-arabinokinases, allose kinases, 1-phosphofructokinases, 2-dehydro-3-deoxygalactonokinases, N-acetylglucosamine kinases, N-acylmannosamine kinases, acyl-phosphate— hexose phosphotransferases, phosphoramidate-hexose phosphotransferases, polyphosphate-glucose phosphotransferases, inositol 3-kinases, scyllo-inosamine 4-kinases, undecaprenol kinases, 1-phosphatidylinositol 4-kinases, 1- phosphatidylinositol-4-phosphate 5-kinases, protein-Npi-phosphohist
- tetraacyldisaccharide 4'-kinases inositol-tetrakisphosphate 1-kinases, macrolide 2'- kinases, phosphatidylinositol 3-kinases, ceramide kinases, inositol-tetrakisphosphate 5- kinases, glycerol— 3-phosphate-glucose phosphotransferases, diphosphate-purine nucleoside kinases, tagatose-6-phosphate kinases, deoxynucleoside kinases, ADP- dependent phosphofructokinases, ADP-dependent glucokinases, 4-(cytidine 5'- diphospho)-2-C-methyl-D-erythritol kinases, 1 -phosphatidylinositol- 5 -phosphate 4- kinases, 1 -phosphatidylinositol- 3 -phosphate 5-kin
- the first kinase can be chosen from a hexokinase, a glucokinase, a galactokinase, a fructokinase, a glycerol kinase, a choline kinase, a pantetheine kinase, a mevalonate kinase, a pyruvate kinase, an undecaprenol kinase, an ethanolamine kinase, a diacylglycerol kinase, a dolichol kinase, a macrolide 2’-kinase, a ceramide kinase, or a combination thereof.
- the single enzyme can comprise a phosphotransferase that uses a phosphate acceptor.
- a phosphotransferase that uses a phosphate acceptor.
- Such enzymes are classified under EC numbers 2.7.4, and include polyphosphate kinases, phosphomevalonate kinases, adenylate kinases, nucleoside-phosphate kinases, nucleoside-diphosphate kinases,
- phosphomethylpyrimidine kinases guanylate kinases, dTMP kinases, nucleoside- triphosphate-adenylate kinases, (deoxy)adenylate kinases, T2-induced deoxynucleotide kinases, (deoxy)nucleoside-phosphate kinases, cytidylate kinases, thiamine-diphosphate kinases, thiamine-phosphate kinases, 3-phosphoglyceroyl-phosphate— polyphosphate phosphotransferases, famesyl-diphosphate kinases, 5-methyldeoxycytidine-5'-phosphate kinases, dolichyl-diphosphate— polyphosphate phosphotransferases, inositol- hexakisphosphate kinases, UMP kinases, ribose 1,5-bisphosphate phosphokinases, diphosphoinositol-pent
- the single enzyme can comprise isopentenyl phosphate kinase (IPK).
- IPK isopentenyl phosphate kinase
- the single enzyme can comprise a mutant enzyme engineered to increase substrate promiscuity , improve enzyme activity, increase enzyme specificity with respect to a particular substrate, or a combination thereof.
- the primary alcohol defined by Formula I is not one of the following
- the methods described above can further comprise introducing the isoprenoid subunit into a natural or artificial isoprenoid biosynthetic pathway to synthesize an isoprenoid.
- a natural or artificial isoprenoid biosynthetic pathway to synthesize an isoprenoid.
- biochemical pathways are well known in the art, and described, for example, in the examples below.
- the isoprenoid subunit can be introduced into a natural or artificial isoprenoid biosynthetic pathway within a cell or in a cell-free system.
- isoprenoid refers to a large and diverse class of naturally-occurring class of organic compounds composed of two or more units of hydrocarbons, with each unit consisting of five carbon atoms arranged in a specific pattern. Isoprenoids represent an important class of compounds and include, for example, food and feed supplements, flavor and odor compounds, and anticancer, antimalarial, antifungal, and antibacterial compounds.
- isoprenoids are classified based on the number of isoprene units comprised in the compound.
- Monoterpenes comprise ten carbons or two isoprene units
- sesquiterpenes comprise 15 carbons or three isoprene units
- diterpenes comprise 20 carbons or four isoprene units
- sesterterpenes comprise 25 carbons or five isoprene units, and so forth.
- Steroids (generally comprising about 27 carbons) are the products of cleaved or rearranged isoprenoids.
- the term“terpenoid” refers to a large and diverse class of organic molecules derived from five-carbon isoprenoid units assembled and modified in a variety of ways and classified in groups based on the number of isoprenoid units used in group members.
- Hemiterpenoids have one isoprenoid unit.
- Monoterpenoids have two isoprenoid units.
- Sesquiterpenoids have three isoprenoid units.
- Diterpenoids have four isoprene units.
- Sesterterpenoids have five isoprenoid units.
- Triterpenoids have six isoprenoid units.
- Tetraterpenoids have eight isoprenoid units.
- Polyterpenoids have more than eight isoprenoid units.
- isoprenoids that can be prepared using the isoprenoid subunits described above include the following (as well as derivatives thereof):
- Flavors and Fragrances Myrcene, linalool, limonene, pinene, humulene, caryophellene, menthol, rose oxide, bisabolene, farnesene, famesol, nootkatone, valencene, cuprene, epi-cubenol, epi-cedrol, a-santalene, vetispiradiene, (-i-)-curcumene, (-i-)-turmerone, (+)-dehydrocurcumene, (-)-cubebol, ionone, damascone,
- Cannabinoids tetrahydrocannabinol, cannabidiol, cannabiol,
- tetrahydrocannabinolic acid cannabidiolic acid, cannabigerol, cannabigerol,
- cannabichromene cannabicyclol, cannabivarin, tetrahydrocannabivarin, cannabidivarin, cannabichromevarin, cannabigerovarin, cannabigerol monomethyl ether, cannabielsoin, and cannabicitran;
- Anti-cancer Agents Bistabercarpamines A and B, b-pinene,
- Neoabiestrine F Cipaferen H, granatumin E, Neoabieslactone I, taxadiene, Englerin A, cortistatin A, and cyclopamine;
- the isoprenoid can comprise a hemiterpenoid, a
- the hemiterpenoid is prenol (i.e., 3-methyl-2-buten-l-ol), isoprenol (i.e., 3 -methyl-3 -buten-l-ol), 2-methyl-3-buten-2- ol, or isovaleric acid.
- the monoterpenoid can be, without limitation, geranyl pyrophosphate, eucalyptol, limonene, or pinene.
- the hemiterpenoid is prenol (i.e., 3-methyl-2-buten-l-ol), isoprenol (i.e., 3 -methyl-3 -buten-l-ol), 2-methyl-3-buten-2- ol, or isovaleric acid.
- the monoterpenoid can be, without limitation, geranyl pyrophosphate, eucalyptol, limonene, or pinene.
- the hemiterpenoid is pre
- sesquiterpenoid is farnesyl pyrophosphate, artemisinin, or bisabolol.
- the diterpenoid can be, without limitation, geranylgeranyl pyrophosphate, retinol, retinal, phytol, taxol, forskolin, or aphidicolin.
- the triterpenoid can be, without limitation, squalene or lanosterol.
- the isoprenoid can also be selected from the group consisting of abietadiene, amorphadiene, carene, a-framesene, b-farnesene, famesol, geraniol, geranylgeraniol, linalool, limonene, myrcene, nerolidol, ocimene, patchoulol, b- pinene, sabinene, g-terpinene, terpindene and valencene.
- the tetraterpenoid is lycopene or carotene (a carotenoid).
- the term“carotenoid” refers to a group of naturally-occurring organic pigments produced in the chloroplasts and chromoplasts of plants, of some other photosynthetic organisms, such as algae, in some types of fungus, and in some bacteria.
- Carotenoids include the oxygen-containing xanthophylls and the non-oxygen-containing carotenes.
- the carotenoids are selected from the group consisting of xanthophylls and carotenes.
- the xanthophyll is lutein or zeaxanthin.
- the carotenoid is a-carotene, b-carotene, g-carotene, b-cryptoxanthin or lycopene.
- isoprenoids defined by Formula IV below
- R 2 is selected from the group consisting of hydrogen, CMO alkyl, Ci-io heteroalkyl, C2-10 alkenyl, C2-10 heteroalkenyl, C2-10 alkynyl, C2-10 heteroalkynyl, C3-10 cycloalkyl, 6-10 membered aryl, 5-10 membered heteroaryl, 4-10 membered
- heterocycloalkyl C 3-i o cycloalkyl-Ci- 4 alkylene, C 3-i o cycloalkyl-Ci- 4 heteroalkylene, 4-10 membered heterocycloalkyl-Ci-4 alkylene, 4-10 membered heterocycloalkyl-Ci-4 heteroalkylene, 6-10 membered aryl-C 1-4 alkylene, 6-10 membered aryl-Ci- 4
- R 3 is selected from the group consisting of Ci- 10 alkyl, Ci- 10 heteroalkyl, C 2-10 alkenyl, C 2-10 heteroalkenyl, C 2-10 alkynyl, C 2-10 heteroalkynyl, C 3-10 cycloalkyl, 6-10 membered aryl, 5-10 membered heteroaryl, 4-10 membered heterocycloalkyl, C 3-10 cycloalkyl-C 1-4 alkylene, C 3-10 cycloalkyl-C 1-4 heteroalkylene, 4-10 membered heterocycloalkyl-C 1-4 alkylene, 4-10 membered heterocycloalkyl-C 1-4 heteroalkylene, 6- 10 membered aryl-C 1-4 alkylene, 6-10 membered
- R 2 is hydrogen. In other embodiments , R 2 can be selected from the group consisting of 6-10 membered aryl, 5-10 membered heteroaryl, 6-10 membered aryl-C 1-4 alkylene, 6-10 membered aryl-Ci-4 heteroalkylene, 5-10 membered heteroaryl-Ci-4 alkylene, and 5-10 membered heteroaryl-C 1-4 heteroalky lene, each optionally substituted with 1, 2, 3, or 4 independently selected R x groups. In certain embodiments, R 2 can comprise:
- n 0, 1, or 2 and R x is as defined above with respect to Formula IV.
- R 3 can be one of the following:
- R 3 is not one of the following
- R 3 is selected from the group consisting of Ci-io alkyl, C HO heteroalkyl, C 2-10 alkenyl, C 2-10 heteroalkenyl, C 2-10 alkynyl, C 2-10 heteroalkynyl, C 3-10 cycloalkyl, 6-10 membered aryl, 5-10 membered heteroaryl, 4-10 membered heterocycloalkyl, C 3-10 cycloalkyl-Ci- 4 alkylene, C 3-i o cycloalkyl-Ci- 4 heteroalkylene, 4-10 membered heterocycloalkyl-C 1-4 alkylene, 4-10 membered heterocycloalkyl-C 1-4 heteroalky lene, 6- 10 membered aryl-Ci- 4 alkylene, 6-10 membered aryl-C 1-4 heteroalky lene, 5-10 membered heteroaryl-Ci- 4 alkylene, and 5-10 membered heteroaryl-Ci- 4 heteroalkylene, each
- heterocycloalkyl-C 1-4 alkylene 4-10 membered heterocycloalkyl-C 1-4 heteroalkylene, 6- 10 membered aryl-C 1-4 alkylene, 6-10 membered aryl-C 1-4 heteroalky lene, 5-10 membered heteroaryl-Ci- 4 alkylene, and 5-10 membered heteroaryl-Ci- 4 heteroalkylene, each optionally substituted with 1, 2, 3, or 4 independently selected R x groups; and each R x , when present, is independently selected from OH, NO 2 , CN, halo, Ci- 6 alkyl, C 2-6 alkenyl, C 2-6 alkynyl, CM haloalkyl, Ci- 6 alkoxy, Ci- 6 haloalkoxy, cyano-Ci- 3 alkyl, HO- C 1-3 alkyl, amino, Ci- 6 alkylamino, di(Ci- 6 alkyl)amino, thio, Ci- 6
- R 4 can be hydrogen
- R 3 is not one of the following
- R 3 is one of the following:
- these isoprenoids can exhibit anticancer activity.
- Terpenes are a large class of natural products with wide-ranging biological activities and applications. Previous synthetic biology efforts in this area have focused on producing natural terpenes in microbes either in efforts to increase product titers through pathway engineering or for altering product specificity. However, just two building blocks are used in nature to assemble the carbon scaffolds of terpenes, thus limiting the synthetic scope and utility of natural terpene biosynthetic pathways for the generation of non-natural analogues. In these examples, a comprehensive strategy employing synthetic biology, metabolic engineering, and protein engineering are described that can be used to produce terpenes from non-natural building blocks. This work also provides a platform for the production of terpenes that are site- selectively modified with non-natural chemical functionality, including handles for chemo- selective diversification.
- these examples (1) reveal remarkable substrate promiscuity in natural and engineered enzymes, (2) expand the mechanistic understanding of several key enzymes, (3) provide an in vivo and in vitro platform for generation of non-natural terpene building blocks, and (4) provide meroterpene and ergot alkaloid analogues via in vitro and in vivo chemo-enzymatic synthesis.
- Example 1 Introduction to terpene biosynthesis and engineering.
- Terpene natural product diversity and biosynthesis Terpene natural products are used as pharmaceuticals (taxol and artemisinin), pesticides (coumarin and pyrethrin), flavors (hopanoids and menthol), fragrances (citronel and limonene), pigments
- Terpenes are biosynthesized by the successive condensation of the five-carbon (C5-) isoprenes isopentenyl diphosphate (IPP) and dimethylallyl diphosphate (DMAPP) ( Figure 2), collectively referred to as hemiterpenes.
- hemiterpenes are either generated by the 1-deoxy-D-xylulose 5-phosphate (DXP) pathway (compartmentalized in plastids) or the mevalonate pathway (cytoplasmic) which allows for various modes of regulation through sequestration, expression, and feedback regulation. Most microbial organisms exclusively use the DXP pathway.
- Hemiterpenes are stitched together by enzymes classified as prenyltransferases (Figure 3).
- DMAPP acts as a starter unit to which a variable number of IPP extender units are added in a process called head-to-tail condensation.
- head-to-head condensation reactions utilizing two equivalents of DMAPP can occur to generate structural diversity not present in their linear counter-parts.
- the linear precursors are either transferred to various acceptor molecules or enzymatically cyclized via terpene cyclases and tailored to form a diverse array of carbon and chirality-rich multi-ring compounds.
- terpene cyclases cleave the allylic diphosphate to generate a highly reactive allylic carbocation ( Figure 5).
- the electrophilic allylic carbocation undergoes a combination of intramolecular methyl shifts, hydride shifts, and alkene additions.
- the enzyme dictates the cyclization pattern using a combination of geometry, solvolysis, and electrostatics.
- terpenes are intimately involved in development, growth, reproduction, and signaling, they are tightly regulated and usually produced in limited quantity in non-engineered or native systems. Thus, terpene biosynthetic genes are often transplanted into various heterologous hosts to overcome these limitations. While genetic tools are increasingly becoming available allowing for genome engineering of plants for over production of terpenes and other natural products, generation time, seasonal variations, land use, and processing of plants including extraction and isolation is still quite an extensive effort that is both costly and inefficient.
- E. coli Escherichia coli
- Saccharomyces cerevisiae S . cerevisiae
- Titers of terpenes have been increased in E. coli and S. cerevisiae by boosting precursor supply and modulating native genes involved in terpene synthesis.
- a non-engineered strain of E. coli is only able to generate 10 mg/F of taxadiene (a synthetic precursor to taxol), balancing the expression of genes responsible for the production and consumption of IPP enabled taxadiene titers as high as 10 g/F. Modification of the native DXP pathway in E.
- terpenes can be further modified by acylation, methylation, glycosylation, isomerization, and a variety of other biosynthetic reactions (Figure 7).
- the terpene scaffold affords a geometric structure to which points of oxidation afford biological specificity.
- the core scaffold of steroids such as lanosterol, has negligible bioactivity.
- these oxidized scaffolds are highly biologically active and importantly their activities have diverged (Figure 8).
- Terpene natural products can be functionalized by a variety of processes.
- the highly saturated and carbon-rich scaffolds of terpenes are not themselves the most facile starting material for chemical diversification as regiospecific oxidation of these highly saturated scaffolds is very challenging.
- the tailoring diversity in natural terpenes is extensive, chemists are still limited to modifications on terpene scaffolds that are directed by the usually stringent regio-selectivity of P450s.
- terpene natural products have been inadvertently diversified by using analogues of structural precursors during mechanistic studies.
- fluorinated analogues are frequently employed (Figure 11). Beyond mechanistic studies, initial insight into the promiscuity of these enzymes towards substrate analogues has been leveraged to afford non-natural terpenes.
- terpene analogues In order to produce terpene analogues in a sufficient amount for use in chemical libraries or potential drug studies, a different approach to terpene production must be considered. While insightful, the current method of synthesizing chemical precursors for in vitro cyclization is not scalable for adequate production. These pyrophosphorylated analogues are not cell permeable and therefore would be unavailable to whole-cell biocatalysis. In addition, synthesis of these analogues is limited in scope as each analogue needs a dedicated synthetic approach. Ideally a method for the production of analogues could be completed in vivo using cheap chemical precursors shuffled through a flexible pathway.
- Chemical handles can also be incorporated into natural products via promiscuous or engineered biosynthetic machinery using unnatural building blocks. Such chemical handles may provide sites available for traditional organic synthesis enabling biochemical studies or chemical library construction ( Figure 13). To diversify the Jadomycin antibiotics, the culture media was enriched with unnatural amino acids that were thermodynamically incorporated into the final products, without the use of biological engineering, due to their high concentration. The structure afforded by this method contained an isolated alkyne that provided a bioorthogonal chemical handle for synthetic diversification. Natural building blocks may still be required for viability or for the biosynthesis of the natural product and as such cannot always be removed from the media or organism. Protein engineering enabling broader promiscuity or specificity shift of biosynthetic pathways and development of chemical strategies will expand the utility of mutasynthesis.
- NRPSs nonribosomal peptide synthases
- Example 2 An artificial pathway for isoprenoid biosynthesis decoupled from native hemiterpene metabolism.
- Isoprenoids are constructed in nature using hemiterpene building blocks that are biosynthesized from lengthy enzymatic pathways with little opportunity to deploy precursor-directed biosynthesis.
- an artificial alcohol-dependent hemiterpene biosynthetic pathway was designed and coupled to several isoprenoid biosynthetic systems, affording lycopene and a prenylated tryptophan in robust yields.
- This approach affords a potential route to diverse non-natural hemiterpenes and by extension isoprenoids modified with non-natural chemical functionality.
- the prototype chemo-enzymatic pathway is a critical first step towards the construction of engineered microbial strains for bioconversion of simple scalable building blocks into complex isoprenoid scaffolds.
- Isoprenoids comprise >55,000 natural products for which methods to access and diversify their structures are in high demand.
- the isoprene motif plays a critical role in modulating the biological activity of isoprenoids, determines their utility as tools to study and treat human diseases, and provides the basis to develop new fuels and chemicals.
- isoprenoids have been accessed via heterologous expression, our ability to diversify isoprenoids is extremely limited largely due to critical limitations imposed by native isoprenoid biosynthesis.
- isoprenoids Furthermore, late-stage biosynthetic modification of isoprenoid scaffolds is typically limited to oxidations, often catalyzed by P450’s.
- terpene metabolism is highly regulated and is a burden to the carbon supply on the cell.
- the MEV pathway uses three molecules of phosphate donor (ATP) and two reducing equivalents (NADPH) for each DMAPP/IPP, while the DXP pathway requires two phosphate donors (ATP and CTP) and two reducing equivalents (NADPH) ( Figure 15A).
- ATP phosphate donor
- NADPH reducing equivalents
- Figure 15A Thirdly, given that native terpenes are typically essential for maintenance of the cell, genetic modification of native hemiterpene pathways would likely be lethal.
- a potential strategy for hemiterpene biosynthesis could start with isopentenol (ISO) and dimethylallyl alcohol (DMAA) which are converted to the required diphosphates via stepwise phosphorylation catalyzed by two independent kinases ( Figure 15B).
- ISO isopentenol
- DMAA dimethylallyl alcohol
- Figure 15B This proposed alcohol-dependent hemiterpene (ADH) pathway is completely orthogonal to the endogenous DMAPP/IPP biosynthetic machinery, such that non-natural precursors are not expected to inhibit endogenous enzymatic machinery.
- this route requires only two equivalents of ATP.
- an artificial pathway designed bottom-up as a replacement for natural hemiterpene biosynthesis could leverage naturally or engineered promiscuous enzymes that enable a broad panel of easily scalable and accessible alcohols to be converted to the corresponding diphosphate, thus providing a strategy to probe the plasticity of downstream isoprenoid biosynthesis in vivo or in vitro.
- this reporter system expresses genes that use pools of hemiterpenes to generate the lycopene pigment, enabling quantification.
- the intensity of the absorbance at 450-470 nm is directly associated with an increase in hemiterpene production given that the reporter system itself is not rate limiting.
- the native DXP pathway in the E. coli reporter strains supports production of lycopene independently of exogenously added DMAA/ISO. Because of this,
- Fs fosmidomycin
- Figure 15A an inhibitor of the first dedicated step in hemiterpene biosynthesis
- Figure 16A was leveraged to knock-down endogenous lycopene production in order to determine whether any endogenous machinery could support conversion of DMAA/ISO to hemiterpenes
- Fs was added to the culture medium at sufficient concentration (0.5 mM) to inhibit the DXP pathway but at low enough concentration growth was not significantly suppressed. In this way, the goal was to employ Fs to prevent accumulation of excess DXP-dependent hemiterpene, forcing production of lycopene solely from the exogenously fed precursors via potential unknown endogenous enzymes.
- IPK isopentenyl phosphate kinase
- PhoN was included in this set as it phosphorylates various alcohols in vitro. Notably, while none of the kinases displayed the desired activity, mass ions consistent with DMAPP (calculated 165.0317 mlz, [M-H] ; observed 165.0318 mlz, [M-H] ) and IPP (calculated 165.0317 mlz, [M-H] ; observed 165.0317 mlz, [M-H] ) were detected in the presence of PhoN.
- kinase- 1 Another potential candidate for kinase- 1 is a membrane-associated diacylglycerol kinase (DGK) from Streptococcus mutans which is known to display undecaprenol-kinase activity. Given that DGK is membrane-bound, it was tested in vivo. In parallel, PhoN was also tested in vivo to ensure that its activity could contribute to isoprenoid biosynthesis. Accordingly, PhoN and DGK (Table 1) were each cloned into pETDuet-IPK and tested for their ability to support isoprenoid production in an E. coli lycopene strain by extraction and HPLC-based quantification of the pigment ( Figure 18A and Figures 19A-19B).
- DGK membrane-associated diacylglycerol kinase
- the prototype PhoN-IPK system was capable of converting DMAA ISO to lycopene in titers of -150 mg/L in E. coli after 12 hours post-induction (Figure 18 A). These titers are comparable to that of an optimized engineered DXP pathway (24 mg/L) and heterologous production of the MEV pathway (102 mg/L) in E. coli. As expected, the activity was largely dependent on the presence of PhoN given that 17-fold less lycopene was produced at 26 hours post-induction when PhoN is absent. In addition, wild-type DGK could support lycopene production in good yields, although these were 4-fold lower than that with PhoN after 24 hours.
- Table 2 Summary of wild-type activities of kinases tested for phosphorylation of ISO and DMAA. Data was retrieved using the BRENDA database.
- the PhoN-IPK pathway was used to provide DMAPP which transferred to L-Trp using the prenyltransferase (PTase) FgaPT2 by providing an addit plasmid that expressed the PTase ( Figure 20A).
- PTase prenyltransferase
- the ADH pathway described here is the first to transform scalable simple precursors directly into the required pyrophosphates and couple them to isoprenoid biosynthesis.
- This provides a simple strategy to provide isoprenoids in good yields given that only two enzymes and DMAA/ISO need to be provided. Indeed, in the absence of ISO/DMAA, there was insufficient endogenous DMAPP in E. coli to support high level production of the
- PhoN displays a broad specificity in vitro, and this is expected to extend to the in vivo system here. Furthermore, several features of PhoN have been targeted by enzyme engineering, including shifting its pH optima for neutral media and improving its kinase activity with concomitant reduction in phosphatase activity.
- IPK insulin receptor kinase
- its substrate interacts with the enzyme active site through electrostatic forces dictated by the phosphate portion of the substrate, while the remaining alkyl portion of the substrate is simply sterically accommodated.
- substrate specificity of IPK has been expanded to include geranyl- and famesylphosphate.
- An expanded set of non-natural hemiterpenes provided by the prototype or engineered ADH pathway could be coupled with downstream enzymes to probe the promiscuity and utility of isoprenoid
- the ADH pathway may enable the production of prenylated and terpene natural products with non-natural alkyl groups expanding upon the limited chemical diversity afforded by nature.
- the amplified products were gel purified, digested with BaniHI and Notl, and ligated into similarly treated‘empty’ pETDuet and pETDuet-IPK (in MCS2). Ligation mixtures were transformed into chemically competent E. coli NovaBlue (DE3) cells (Novagen) and plated on LB agar supplemented with 50 pg/mL kanamycin for incubation overnight at 37 °C.
- Colonies were then screened for the appropriate size insert by colony PCR using primers annealing to the T7 promoter and T7 terminator. Those colonies with correct sized inserts were then picked and grown in 3 mL LB supplemented with 50 pg/mL kanamycin for incubation overnight at 37 °C. Plasmid was prepared from a single colony and the gene sequence confirmed by DNA
- the culture was pelleted at 4,000 rpm for 10 min, the supernatant decanted, and the cell pellet resuspended in 5 mL of lysis buffer (100 mM Tris, 300 mM NaCl, 10% glycerol, pH 8.0) and lysed by sonication.
- the debris was then pelleted at 4,500 rpm for 20 min, decanted, and the soluble protein was spun down additionally at 15,000 rpm for 1 h.
- the resulting soluble fraction was then purified using loose Ni 2+ resin from GE Healthcare. 200 pL of resin was added to the soluble fraction of protein and incubated on ice for 1 hour with intermittent agitation to suspend the resin.
- the resin was then spun down for 10 min at 4,500 rpm at 4 °C and the lysate was removed.
- the resin was then resuspended in 1 mL of wash buffer (50 mM Tris, 500 mM NaCl, 20 mM imidazole, pH 8.0) and transferred to a 1.5 mL tube.
- wash buffer 50 mM Tris, 500 mM NaCl, 20 mM imidazole, pH 8.0
- the mixture was allowed to incubate on ice for 10 min before the resin was spun down again as before. This washing procedure was repeated 4 more times before the protein was eluted with 200 pL of elution buffer (50 mM Tris, 500 mM NaCl, 200 mM imidazole, pH 8.0).
- the protein was then directly assayed and purity was verified by SDS-PAGE with comparison to the soluble fraction of E. coli BL21 (DE3) Tuner cells not harboring any plasmid.
- the assay consisted of 10 pL of purified protein in a total volume of 100 pL containing 5 mM ATP, 1 mM of ISO and DMAA (stock of 100 mM in DMSO), 50 mM Tris at pH 7.5, and 2.5 mM MgCK The reaction was incubated overnight at 37 °C before being quenched with an equal volume of methanol. The mixture was then analyzed by low-resolution LC- MS along with a synthetic standard of isopentenyl phosphate and dimethylallyl
- TEAP Bis-triethylammonium phosphate
- solution A 25 mL phosphoric acid, 94 mL acetonitrile
- solution B 110 mL triethylamine, 100 mL acetonitrile
- To the mixture of alcohol and trichloroacetonitrile was added 10 mL of TEAP solution.
- the mixture was then incubated in a 37 °C water bath for 5 min before another addition of TEAP. A total of three additions of TEAP solution were added and incubated. The mixture was then separated by column chromatography using 6:2.5:0.5 iPrOH: cone.
- DMAPP Dimethylallyl diphosphate
- Colonies of E. coli BL21Tuner(DE3) harboring pCDFDuet-GGPP (see below) and pACYCDuet-Lyc (see below) were used to inoculate separate wells of a deep-well plate containing 1 mL of LB media supplemented with ampicillin (150 pg/mL),
- the OD600 of the culture was approximately 0.1, and IPTG, DMAA/ISO, and Ls were each added to give final concentrations of 1 mM, 5 mM, and 0.5 pM, respectively, to bring the cultures to a final volume of 500 pL.
- Lor controls that lacked one or more of these components LB media was added instead. Plates were then incubated in the dark in an incubator/shaker at 30 °C with shaking at 350 rpm for 48 h. Then, the deep-well plate was centrifuged at 3,000 rpm for 7 min to pellet the cells. After removal of the growth media from each well, the pellets were resuspended in 1 mL of phosphate buffer saline buffer with vigorous vortexing and the resuspended pellets were visualized and photographed.
- pCDLDuet-GGPP contained a mutated version of the E. coli IspA gene (Y80D) and idi from E. coli that were subcloned sequentially into pCDLDuet. Briefly, ispA and idi were each PCR amplified from E. coli DH5a using the primers listed in Table 3. Each PCR reaction mixture contained 5x Phire II buffer, 0.2 mM dNTPs, 0.5 pM each primer, 1 pL Phire II DNA polymerase, and 1 pL of template DNA in a total volume of 50 pL. The cycling parameters used were as follows: 1) 98 °C, 30 s; 2) 98 °C, 5 s; 3) 63 °C, 15 s; 4) 72 °C,
- the mutation Y80D was introduced by site-directed mutagenesis.
- pACYCDuet-Lyc contains the CrtEBI operon genes from Pantoea ananatis that were sub-cloned sequentially using pACmod-crtE-crtB-crtl as a template. Briefly, crtB and crtl were each PCR amplified from the template pACmod-crtE-crtB-crtl using the primers listed in Table 3. Each PCR reaction mixture contained 5x Phire II buffer, 0.2 mM dNTPs, 0.5 mM each primer, 1 pL Phire II DNA polymerase, and 1 pL of template DNA, in a total volume of 50 pL.
- the cycling parameters used were as follows: 1) 98 °C, 30 s; 2) 98 °C, 5 s; 3) 63 °C, 15 s; 4) 72 °C, 20 s; 5) repeat steps 2-4 34 times; 6) 72 °C, 1 min; 7) 4 °C, hold.
- the products were purified by gel electrophoresis and digested with Bglll and Xho I for crtB and Nco I and HintUU for crtl and ligated into the appropriately treated pCDFDuet vector. Each ligation mixture was transformed into chemically competent E. coli DH5a and plated on an LB agar plate containing 35 pg/mL chloramphenicol. Plasmid was prepared from a single colony and the gene sequence confirmed by DNA sequencing.
- the sequence of ipk (Table 2) codon- optimized for heterologous expression in E. coli was synthesized by IDT and PCR amplified using the primers listed in Table 3.
- the PCR reaction mixture contained 5x Phire II buffer, 0.2 mM dNTPs, 0.5 pM each primer, 1 pL Phire II DNA polymerase, and 1 pL of template DNA, in a total volume of 50 pL.
- the cycling parameters used were as follows: 1) 98 °C, 30 s; 2) 98 °C, 5 s; 3) 63 °C, 15 s; 4) 72 °C, 20 s; 5) repeat steps 2-4 34 times; 6) 72 °C, 1 min; 7) 4 °C, hold.
- the product was purified by gel electrophoresis, digested with Ndel and Xhol and ligated into similarly treated pETDuet-1 (into multi-cloning site two).
- the ligation mixture was transformed into chemically competent E. coli DH5a and plated on LB agar containing 100 pg/mL of ampicillin. Plasmid was prepared from a single colony and the gene sequence confirmed
- the sequence of phoN (Table 2) codon-optimized for expression in E. coli was synthesized by IDT and PCR amplified using the primers listed in Table 2.
- the PCR reaction contained 5x Phire II buffer, 0.2 mM dNTPs, 0.5 mM each primer, 1 pL Phire II DNA polymerase, and 20 ng of template DNA, in a total volume of 50 pL.
- the cycling parameters used were as follows: 1) 98 °C, 30 s; 2) 98 °C, 5 s; 3) 66 °C, 15 s; 4) 72 °C,
- the amplified product was gel purified, digested with BainH] and Noil, and ligated into similarly treated‘empty’ pETDuet and pETDuet-IPK (into MCS1).
- the ligation mixture was transformed into chemically competent E. coli DH5a and plated on LB agar containing 100 pg/mL of ampicillin. Plasmid was prepared from a single colony and the gene sequence confirmed by DNA sequencing using the primer‘pET Upstream’ (ATGCGTCCGGCGTAGA; SEQ. ID 48).
- PhoN PhoN-pETDuet-PhoN was transformed into chemically competent E. coli BL21(DE3) for protein expression.
- the culture was cooled to 18 °C, and protein expression was induced by the addition of IPTG to a final concentration of 1 mM.
- the culture was incubated at 18 °C and 200 rpm for an additional 20 h.
- 110 culture was spun down into a pellet which was stored at -20 °C until purification.
- the cell pellets were thawed and resuspended in 20 mL of lysis buffer (250 mM sodium chloride, 50 mM sodium phosphate, 10 mM imidazole, pH 7.9).
- the cells were lysed by sonication and spun down.
- the cell lysate was then separated from the insoluble cell debris, and the His 6 -tagged proteins were purified from the lysate using Ni 2+ beads on agarose using a low-imidazole buffer (50 mM Tris, 300 mM NaCl, 20 mM imidazole, pH 8.0) as the wash buffer and a high-imidazole buffer (50 mM Tris, 300 mM NaCl, 200 mM
- IPK IPK
- pET28a-IPK was transformed into chemically competent E. coli BL21(DE3) for protein expression.
- An overnight 3 mL culture in LB broth supplemented with kanamycin (50 pg/mL) was grown at 37 °C with shaking at 270 rpm.
- a I L culture in LB broth was inoculated with 1 mL of the overnight culture and grown at 37 °C with shaking at 250 rpm to an ODeoo of 0.6.
- the culture was cooled to 30 °C and protein expression was induced by the addition of IPTG to a final concentration of 1 mM.
- the culture was incubated at 30 °C and 200 rpm for an additional 20 h.
- the culture was spun down into a pellet which was stored at -20 °C until purification.
- Cell pellets were thawed and resuspended in 25 mL lysis buffer (250 mM sodium chloride, 50 mM sodium phosphate, 10 mM imidazole, pH 7.9). The cells were lysed by sonication and centrifuged.
- the cell lysate was then separated from the insoluble cell debris, and the His 6 -tagged proteins were purified from the lysate using the Bio-Rad Profinia system and Bio-Scale Mini Nuvia IMAC Ni-Charged 5-mL columns hollowing loading of the sample onto the column, the system washed first with 6 column volumes of 2x Native IMAC Wash 1 solution (1 M NaCl, 100 mM Tris, 10 mM imidazole, pH 8.0) and then with 6 column volumes of 2x Native IMAC Wash 2 solution (1 M NaCl, 100 mM Tris, 40 mM imidazole, pH 8.0).
- the sample was eluted in 3 column volumes of 2x Native IMAC Elution buffer (1 M NaCl, 100 mM Tris, 500 mM imidazole, pH 8.0). Then the eluent was concentrated and buffer exchanged into protein storage buffer (50 mM Tris-HCl, 500 mM NaCl, 20% glycerol, pH 7.4) using 10 kDa molecular-weight cutoff
- the concentration of protein was determined using a Bradford assay and small aliquots of protein were stored at -80 °C until needed.
- E. coli NovaBlue (DE3) containing pAC-LYCipi and various pETDuet constructs were grown in 250 mL LB supplemented with ampicillin (100 pg/mL) and chloramphenicol (35 pg/mL) at 37 °C overnight with shaking at 250 rpm after inoculation with 0.25 mL of the starter culture. After 5 h the ODeoo of the culture was -0.2 at which point combinations of DMAA/ISO (in DMSO), IPTG, and Fs were added to give final concentrations of 5 mM, 1 mM, and 0.5 pM, respectively. In controls that lacked DMAA/ISO, DMSO was added to give the equivalent volume. At various time points, 600 pL of culture was then removed and the lycopene was extracted and quantified.
- HPLC HPLC was performed by injecting 10 pL of the clarified extract onto a Phenomenex Kinetex EVO C18 column (250 x 4.6 mm, 5 pm, 100 A pores) with an isocratic elution buffer consisting of 8: 1.5: 0.5 isopropanol: acetonitrile: methanol over 20 min. Lycopene was assayed at 470 nm. Areas were extracted and compared to the standard curve for quantification.
- Lycopene Standard Curve A standard curve for lycopene was derived by adding various known amounts of commercial lycopene standard to E. coli
- FgaPT2 The sequence of fgaPT2 codon-optimized for expression in E. coli (Table 2) was synthesized by IDT and PCR amplified using the primers listed in Table 3.
- the 50 pL reaction for amplification of fgaPT2 contained 5x Phire buffer, 0.2 mM dNTPs, 0.25 pM each primer, 1 pL Phire II DNA polymerase, and 1 pL template DNA.
- the cycling parameters used for each were as follows: 1) 98 °C, 30 s; 2) 98 °C, 5
- the amplified product was purified by gel electrophoresis, digested with HindHI and Nde I and ligated into similarly treated pET28a to generate pET28a-FgaPT2.
- the ligation mixture was then transformed into chemically competent E. coli DH5a and plated on LB agar containing 50 pg/mL of kanamycin. Plasmid was prepared from a single colony and the gene sequence confirmed by DNA sequencing using the T7 promoter primer.
- fgaPT2 was PCR amplified using the same conditions as above but with different primers also listed in Table 3. Following amplication, the product was digested with BamHl and HindHI and ligated into similarly treated pCDFDuet. The ligation mixture was then transformed into chemically competent E. coli DH5a and plated on LB agar plates containing 100 pg/mL of streptomycin. Plasmid was prepared from a single colony and the gene sequence confirmed by DNA sequencing using the DuetUP2 and T7 terminator primers.
- FgaPT2 FgaPT2
- pET28a-FgaPT2 was transformed into chemically competent Rossetta PLysS cells for expression. An overnight 3 mL culture of these cells containing 50 pg/mL of kanamycin and 25 pg/mL of chloramphenicol in LB media was grown at 37 °C and 270 rpm. A I L culture in terrific broth containing 30 pg/mL of kanamycin and 35 pg/mL of chloramphenicol was inoculated with 2 mL of overnight culture and grown at 37 °C and 250 rpm to an ODeoo of 0.6.
- the culture was cooled to 24 °C and induced by the addition of IPTG to 0.5 mM final concentration. The culture was incubated for 24 h at 24 °C. The culture was pelleted and stored in two aliquots at -20 °C until purification. Cell pellets were thawed and resuspended in 25 mL lysis buffer (250 mM sodium chloride, 50 mM sodium phosphate, 10 mM imidazole, pH 7.9). The cells were lysed by sonication and spun down.
- 25 lysis buffer 250 mM sodium chloride, 50 mM sodium phosphate, 10 mM imidazole, pH 7.9
- the cell lysate was then separated from the insoluble cell debris, and the His 6 -tagged proteins were purified from the lysate using the Bio-Rad Profinia system and Bio-Scale Mini Nuvia IMAC Ni-Charged 5-mL columns. Following loading of the sample onto the column, the system washed first with 6 column volumes of 2x Native IMAC Wash 1 solution (1 M NaCl, 100 mM Tris, 10 mM imidazole, pH 8.0) and then with 6 column volumes of 2x Native IMAC Wash 2 solution (1 M NaCl, 100 mM Tris,
- the sample was eluted in 3 column volumes of 2x Native IMAC Elution buffer (1 M NaCl, 100 mM Tris, 500 mM imidazole, pH 8.0). Then the eluent was concentrated and buffer exchanged into protein storage buffer (50 mM Tris- HC1, 500 mM NaCl, 20% glycerol, pH 7.4) using 50 kDa molecular-weight cutoff filters. The concentration of protein was determined using a Bradford assay, and small aliquots of protein were stored at -80 °C until needed.
- FgaPT2 assay In vitro FgaPT2 assay. FgaPT2 reactions were run at pH 7.5 in 200 pL containing 50 mM Tris-HCl, 5 mM CaCh, 1 mM L-tryptophan, 2 mM DMAPP, and 40 pg of FgaPT2. The reactions were incubated at 37 °C for 1 h and then quenched by the addition of an equal volume of methanol.
- Reactions with PhoN-IPK generated DMAPP contained 25 mM Tris-HCl, 5 mM magnesium chloride, 1 mM F-tryptophan, 1.8 mM ATP, 30 mM DMAA, 270 ng/pF FgaPT2, 20 ng/pF IPK, and 87 ng/pF PhoN at pH 8.0 in a total volume of 50 pF.
- the reactions were incubated at 37 °C overnight and then quenched by the addition of an equal volume of methanol.
- FgaPT2 reactions were followed at 269 nm using a Phenomenex Kinetex 5u EVO C18 column (250 x 4.6 mm; 100 A) at a flow rate of 1 mF/min.
- Example 3 Probing the substrate promiscuity of isopentenyl phosphate kinase as a platform for hemiterpene analogue production.
- unnatural analogues may provide uncharacterized modes of reactivity for terpene cyclases.
- unnatural linear terpene precursors could also be appended to other natural products such as meroterpenoids and ergot alkaloids.
- terpene synthases and terpene cyclases have already been shown to be at least partially promiscuous towards analogues of their natural substrates.
- a platform enabling the production of hemiterpene analogues would allow for generation of diversified building blocks for which prenyltransferases and terpene cyclases could be engineered to accept.
- Terpene precursors are naturally synthesized by the DXP and mevalonate pathways. Terpenes, produced in E. coli by the DXP pathway, are essential for the construction of lipid carriers used in the transportation of glycan components for the maintenance of the cell envelope. Because terpenes are essential for cell survival, modification of the native anabolic pathway may be lethal and in addition, would require the engineering of up to 7 enzymes and methodical planning of how to generate their corresponding substrate analogues from primary metabolites.
- biocatalysts that have stereochemical preferences in addition to the requirement of structural motifs essential for full substrate maturation.
- unnatural hemiterpenes can be produced by consecutive enzymatic phosphorylation of alcohols, as is accomplished synthetically.
- PhoN can phosphorylate a wide variety of alcohols with various phosphate donors (Figure 22).
- Minimal studies have been conducted to describe promiscuity of IPK towards various alkyl phosphates that may be relevant to terpene diversification.
- the objective of this example is to fully explore the substrate promiscuity of IPK by defining its scope and utility as a tool to generate non-natural terpene precursors. It is
- IPK will display broad specificity towards a wide range of alcohol monophosphates. If so, this can be effectively coupled with an upstream candidate isopentenol kinase (e.g., PhoN) to produce non-natural hemiterpenes.
- an upstream candidate isopentenol kinase e.g., PhoN
- TEAP triethylammonium phosphate solution
- thermostability suggests a rigid structure that are often amenable to engineering.
- IPK was also found to be active towards a variety of C4 and C5 monophosphorylated substrates. After finding some basal level of geranyl monophosphate (GP)
- IPK phosphorylation
- IPK was tested against a wider panel of substrates.
- the IPK gene from T. acidophilum was codon optimized and subcloned into pET28a.
- the enzyme was purified via metal-chelation affinity chromatography.
- the substrate specificity of the enzyme was determined in vitro using a panel of synthesized alcohol monophosphates using low resolution mass spectrometry ( Figure 25).
- the availability of alcohol diphosphate byproducts ( Figure 23) conveniently served as product standards.
- the k at with 1 and 3 was 4.25- and 5.1-fold higher than that with IP.
- IPK has a wide substrate tolerance. Prediction of cLogP values of the substrates to measure greasiness and plotting these against measured K s and fe at ’s provided no correlation. No correlation between K m s and feat’s were observed when plotting against molecular volumes. While IPK exhibits a wide substrate tolerance, K m values very greatly. This indicates that while it was hypothesized that the phosphate was the primary governing force in substrate binding, the remaining alkyl portions of the monophosphates have a large impact on K m .
- the data in this example points towards the plausibility of using IPK to generate small monophosphorylated substrates (from four up to eight carbons) into their corresponding pyrophosphates. Congruent with the promiscuity of PhoN, such a system can be coupled together to convert a broad variety of alcohols into diphosphorylated compounds via the consumption of just two phosphate donors. Notably, Nature has not been afforded the opportunity to select against the use of 1-15 as substrates, and this is effectively leveraged by PhoN-IPK as a platform the hemiterpene production.
- the next step is to couple these enzymes in vivo.
- Isopentenyl monophosphate kinase (IPK) from Thermoplasma acidophilum was codon-optimized and synthesized by Genewiz, Inc.
- the ipk gene was PCR amplified from the provided template using then cloned into pET28a using Nde I and Xhol restriction sites. PCR was performed using Phire Hot Start II polymerase
- PCR product was purified prior to and after digestion by agarose gel electrophoresis. Digested PCR product and similarly treated pET28a were ligated at room temperature with T4 ligase (New England BioLabs) according to supplier’s protocol. Ligated plasmid was then transformed into DH5a and plated onto LB agar plates containing 50 pg/mL kanamycin. Individual colonies were picked, grown in the presence of kanamycin, plasmids purified and the ipk gene sequence and frame verified by DNA sequencing (Genewiz).
- pET28a-IPK plasmid was transformed into E. coli BL21 (DE3) for protein expression.
- a single colony was used to inoculate a 3 mL culture in LB media supplemented with 50 pg/mL kanamycin.
- a I L culture containing 50 pg/mL kanamycin in LB media was then inoculated with 1 mL of the overnight culture and grown to an ODeoo of -0.6 at 37°C with shaking at 300 rpm at which point protein expression was induced by the addition of 1 mM IPTG.
- the temperature of the incubator- shaker was reduced to 30°C and the culture incubated for approximately 18 hours.
- the culture was pelleted at 4000 rpm for 10 mins, the supernatant was decanted, the cell pellet resuspended in 15 mL of lysis buffer (100 mM Tris, 300 mM NaCl, 10% glycerol, pH 8.0) and lysed by sonication. The lysate was then pelleted at 4500 rpm for 10 mins, decanted, and the soluble protein was spun down at 15,000 rpm for 1 hour. The resulting soluble fraction was then purified by fast protein liquid chromatography (FPLC) using nickel-bead column chromatography for the extraction of His 6 -tagged proteins.
- FPLC fast protein liquid chromatography
- the column was first equilibrated with wash buffer (50 mM TRIS-HCl, 500 mM NaCl, 20 mM imidazole, pH 8.0) prior to loading of the soluble fraction.
- the soluble fraction was then eluted with elution buffer (50 mM TRIS- HCl, 500 mM NaCl, 200 mM imidazole, pH 8.0) using a gradient of 0% elution buffer 0- 7.5 min., 0-50% 7.5-18 min., 50-100% 18-22 min., 100% 22-27.5 min, and equilibrated for additional runs with 0% elution buffer 27.5-35 min. Fractions containing the desired protein were identified by SDS-PAGE and pooled.
- the pooled protein was then concentrated using a 10 KDa molecular weight cut-off filter (Millipore Amicon-Ultra) and the buffer was exchanged with protein storage buffer (50 mM Tris-HCl, 100 mM NaCl, and 20% glycerol at pH 8.0). Protein aliquots were flash frozen with a dry ice isopropanol bath before storage at -80°C. Protein purity was confirmed by SDS-PAGE
- Trichloroacetonitrile (1 mL, 10 mmol) was then added and the mixture was allowed to incubate at room temperature for 5 min.
- Bis-triethylammonium phosphate (TEAP) solution was prepared by slowly adding solution A (25 mL phosphoric acid, 94 mL acetonitrile) to solution B (110 mL triethylamine, 100 mL acetonitrile) to generate a solution that was 38% solution A and 62% solution B.
- TEAP Bis-triethylammonium phosphate
- triammonium salt was then characterized and stored frozen as 250 pL 25 mM aliquots.
- NADH-Coupled Kinetic Assays NADH coupled assays were performed with purified enzymes. Reaction progress was monitored by absorbance at 340 nm at 30°C in a 96-well plate using a Biotek Synergy 4 plate reader (Winooski, VT). 200 pL enzymatic mixtures contained 50 mM Tris (pH 8.0), 25 mM KC1, 2.5 mM MgCh, 0.05 mM DTT, 1 mM ATP, 320 pM NADH, 400 pM phosphoenolpyruvate, 0.5 U pyruvate kinase, 0.7 U lactate dehydrogenase, and various amounts of substrate. Conditions were verified by doubling enzyme and verifying the initial rate was doubled as well.
- But-3-yn-l-yl monophosphate (9) ⁇ -NMR (400 MHz, D 2 0): d 3.91-3.95 (2 H, m), 2.52-2.55 (2 H, m), 2.36-2.40 (1 H, m); 31 P NMR (162 MHz, D 2 0) d 2.38; HRMS m/z calculated for C4H7O4P [M-H + ] 149.0009, found: 149.0007.
- Example 4 Remarkable Catalytic and Mechanistic Versatility of a trans- Prenyltransferase.
- Terpene natural products are used in pharmaceuticals (taxol and artemisinin), pesticides (coumarin and pyrethrin), flavors (hopanoids and menthol), fragrances (citronel and limonene), pigments (carotenoids and xanthophylls), potential biofuels (bisabolane) and a variety of other commercial products.
- Biosynthesis of terpenes proceeds through condensation of dimethylallyl pyrophosphate (DMAPP) with consecutive isopentenyl pyrophosphate extender units (IPP) to generate prenyl diphosphates. These linear precursors are then cyclized to generate cyclic terpenes via terpene cyclases ( Figure 28, panel A).
- DMAPP dimethylallyl pyrophosphate
- IPP isopentenyl pyrophosphate extender units
- terpenes as scaffolds for chemical diversification are limited to leveraging the reactivity of chemical handles that may be present in naturally occurring terpenes. This in turn limits the scope of structure activity relationship (SAR) studies of terpenes. As cyclized terpenes are almost exclusively composed of only hydrocarbon backbones, decoration of these scaffolds is accomplished synthetically by oxidation using C-H activation or biosynthetically using P450s (Figure
- Prenyltransferases catalyze elongation of the hemiterpene starter unit, DMAPP, utilizing sequential additions of the hemiterpene extender unit, IPP (Scheme 4).
- Prenyltransferases are responsible for the generation of linear terpenoid intermediates from these two interconvertible endogenous building blocks and therefore directly impact composition of the final terpene natural product.
- Prenyltransferases can utilize DMAPP analogues containing alternative diphosphate moieties, alkyl extensions at the methyl positions, epoxidized alkenes, and unsaturated alkenes. Even though a range of DMAPP analogues can potentially serve as substrates for prenyltransferases, the structural diversity of known analogues is limited to derivatives of allylic diphosphates containing trisubstituted alkenes. While extensive studies on DMAPP derivatives have been conducted, minimal work has been carried out to describe the promiscuity of
- prenyltransferases with IPP analogues work done previously with IPP analogues has been limited to extender units containing the natural homoallylic diphosphate core with no exploration into alternative nucleophiles and only a single study using one substrate altering the spacing between the nucleophile and diphosphate moiety. To overcome this severely limited scope, it was hypothesized that prenyltransferases might be able to use a variety of nucleophiles in place of the natural extender unit IPP as a general strategy to biosynthesize isoprenoid analogues.
- prenyltransferases catalyze carbon-carbon bond formation simply by directing the nucleophilic attack of a relatively non-nucleophilic homoallylic alkene to an allylic carbocation followed by stereo specific desaturation.
- additional diversity accessed through this approach could provide new chemical handles or varying oxidation states of carbons in terpene backbones not afforded by endogenous P450s.
- Reloading of the extended product can then be achieved after expulsion of the released diphosphate allowing for further elongation. Whether the deprotonation and nucleophilic attack is concerted has been debated.
- prenyltransferases As the substrate scope of prenyltransferases has not been found to be limited, the tolerance of prenyltransferases towards unnatural nucleophiles should be further characterized for their ability to catalyze irreversible carbon-carbon bond formation.
- IspA a farnesyl diphosphate synthase (FPPase) from Escherichia coli, was characterized for its ability to
- 131 utilize a panel of unnatural extender units for the generation of extended prenyl diphosphate analogues.
- Prenyltransferase reactions were run with 200 mM starter unit and 600 mM extender unit in 50 mM Tris and 10 mM MgCh at pH 7.5 with enzyme. Reactions were allowed to proceed overnight at 37°C before being quenched with an equal volume of methanol. Products were analyzed by high-res mass spectrometry.
- Extender Unit Analogues As IPP recognition is presumably principally driven by the electrostatic forces of the diphosphate rather than that of the greasy interactions of the alkyl tail, it was envisioned that the enzyme may be agnostic towards the remaining part of the extender unit. Besides the pyrophosphate segment, IPP must sterically fit into the extender unit binding pocket and must be recognized by low energy
- Alkene diphosphate 18 was efficiently utilized by IspA to extend the natural starter unit DMAPP. Compared to the natural extender unit IPP, 18 only lacks a methyl group, and it is expected to occupy the IspA extender unit binding pocket as well as IPP does. Notably, the vinyl bromide 20 was used almost as efficiently as IPP. Low activity of IspA towards 22 is of note as extender units do not typically have allylic diphosphates unless the prenyltransferase is catalyzing head-to-head condensation.
- the alkene 23 was also found to be a good substrate indicating that IspA was able to accommodate catalysis of carbon-carbon forming reactions between unactivated p- systems and DMAPP as is the case with the use of the natural substrate IPP ( Figure 32).
- IPP analogues were efficiently utilized by IspA with GPP as the starter unit. For example, conversion of 26 and 29 were almost as good as that with IPP. Almost quantitative conversion was detected with 18 and 20. The only analogues that were not detectable substrates were 23, 28, and 31. While the specificity of analogue use in place of IPP is not identical with DMAPP and GPP as starter units, the similarity is striking. This implies that the binding pocket in which the starter unit occupies is entirely separate of that in which the extender unit resides.
- the 13 C NMR spectrum of the isolated product included a signal at 206 ppm
- Mechanism B utilizes the addition of a nucleophile to a conjugated alkene to facilitate a second addition to an electrophile while the biosynthesis of GPP-26b most likely is Brpnsted base catalyzed addition of an alkyne to an electrophile in a stereo specific manner. Optical rotation of the isolated allene GPP-26b suggests this is the case.
- IspA catalyzes two extensions of DMAPP with IPP to first generate geranyl pyrophosphate (GPP) and then famesyl pyrophosphate (FPP).
- GPP geranyl pyrophosphate
- FPP famesyl pyrophosphate
- GGPP geranylgeranyl diphosphate
- IspA geranylgeranyl diphosphate
- the mutations S81F and Y80D were each introduced into the wild-type IspA gene sequence by site-directed mutagenesis.
- the mutant proteins were expressed in E. coli and purified as hexa-histidine fusion proteins via immobilized metal affinity chromatography.
- the wild-type, S81F and Y80D IspA were each incubated with IPP and each of 18-37 and the resulting product mixtures
- IspA S81F and Y80D could not be detected with IspA S81F and Y80D, likely because the mutants are less active than the wild-type with all substrates, and the level of activity with these analogues fall below the detection limit of the LC-MS assay.
- wild-type IspA produces a single GPP (CIO) product with the natural substrates, DMAPP and IPP, highlighting the strict stereo- and regio- specificity of proton abstraction from the intermediate.
- LC-MS analysis of the product profile generated by the wild-type, Y80D, and S81F IspA using some of novel non-natural extender units (18 and 22) revealed several product ions with unique retention times.
- the wild-type enzyme was able to catalyze chain extension using 10 of 20 unnatural extender units containing various functionalities.
- chemists may be afforded with built-in chemical handles or even new structures not provided by Nature due to the potential of novel ring structures generated from substrate directed cyclization patterns instead of strictly enzyme guided bond formation.
- IspA (NP_414955.1) was PCR amplified from E. coli BL21 genomic DNA using the oligos IspA-BamHI-FWD and IspA-XhoI-REV, and cloned into pET28a using BamHI and Xhol restriction sites. PCR was performed using Phire Hot Start II polymerase (ThermoScientific) according to the manufacturer’s protocol. PCR product was purified prior to and after digestion by agarose gel electrophoresis. Digested PCR product and similarly treated pET28a were ligated at room temperature with T4 ligase (New England Bio Labs) according to supplier’s protocol. Ligated plasmid was then transformed into DH5a and plated onto LB agar plates containing 50 pg/mL
- mutagenesis Primers used previously were employed 106 . Briefly, mutagenic primers for each mutation were used to amplify the IspA gene from the pET28a-IspA template using Pfu turbo polymerase, digested with Dpnl to remove the parent template, and ligated using T4 DNA ligase. Ligation mixtures were then transformed into E. coli DH5a and plated onto LB agar plates containing 50 pg/mL kanamycin. Individual colonies were then used to prepare plasmids, and the desired mutations confirmed by sequencing. No spurious mutations were identified. Purified plasmid was transformed into E. coli BL21 DE3 for expression.
- IspA Expression and Purification of IspA.
- Each pET28a-IspA, pET28a-IspA-S81F, and pET28a-IspA-Y80D plasmid was transformed into E. coli BL21 (DE3) for protein expression.
- a single colony was used to inoculate a 3 mL culture in LB media supplemented with 50 pg/mL kanamycin.
- a I L culture containing 50 pg/mL kanamycin in LB media was then inoculated with 1 mL of the overnight culture and grown to an OD600 of -0.6 at 37°C with shaking at 300 rpm at which point protein expression was induced by the addition of 1 mM IPTG.
- the temperature of the incubator-shaker was reduced to 18°C and the culture incubated for approximately 18 hours.
- the culture was pelleted at 4000 rpm for 10 mins, the supernatant was decanted, the cell pellet resuspended in 15 mL of lysis buffer (100 mM TRIS-HCl, 300 mM NaCl, 10% glycerol, pH 8.0) and lysed by sonication.
- the lysate was then pelleted at 4500 rpm for 10 mins, decanted, and the soluble protein was spun down at 15,000 rpm for 1 hour.
- the resulting soluble fraction was then purified by fast protein liquid chromatography (FPLC) using nickel-bead column chromatography for the extraction of His6-tagged proteins.
- FPLC fast protein liquid chromatography
- the column was first equilibrated with wash buffer (50 mM TRIS-HCl, 500 mM NaCl, 20 mM imidazole, pH 8.0) prior to loading of the soluble fraction.
- soluble fraction was then eluted with elution buffer (50 mM TRIS-HCl, 500 mM NaCl, 200 mM imidazole, pH 8.0) using a gradient of 0% elution buffer 0-7.5 min., 0-50% 7.5-18 min., 50-100% 18-22 min., 100% 22-27.5 min, and equilibrated for additional runs with 0% elution buffer (50 mM TRIS-HCl, 500 mM NaCl, 200 mM imidazole, pH 8.0) using a gradient of 0% elution buffer 0-7.5 min., 0-50% 7.5-18 min., 50-100% 18-22 min., 100% 22-27.5 min, and equilibrated for additional runs with 0% elution buffer (50 mM TRIS-HCl, 500 mM NaCl, 200 mM imidazole, pH 8.0) using a gradient of 0% elution buffer 0-7.5 min., 0-50% 7.5-18
- IspA mutants were modeled using PDB file 1RQI with PyMol. PyMol’s mutagenesis wizard tool was used for visualization of different chain length determinant mutants. Modeling of analogues with IspA was conducted using Glide (Schrodinger) with DMAPP docked.
- TEAP Bis-triethylammonium phosphate
- solution A 25 mL phosphoric acid, 94 mL acetonitrile
- solution B 110 mL triethylamine, 100 mL acetonitrile
- To the mixture of alcohol and trichloroacetonitrile was added 10 mL of TEAP solution.
- the mixture was then incubated in a 37°C water bath for 5 min before another addition of TEAP was added. A total of three additions of TEAP solution were added and incubated. The mixture was then separated by column chromatography using 6:2.5:0.5 iPrOH: cone.
- triammonium salt was then characterized and stored frozen as 250 pL 25 mM aliquots.
- Prenyltransferase Product Isolation of Prenyltransferase Product.
- the prenyltransferase reactions were scaled to 50 mL and were carried out in 50 mL polypropylene tubes with incubation at 37 °C in a shaker at 250 rpm. Importantly, agitation and introduction of ambient air resulted in a loss of product formation potentially attributable to oxidation of IspA. Reactions were run for 48 hours and monitored by LC-MS. Upon complete consumption of DMAPP, Chelex (200 mg) was added to the mixture and the reaction was incubated as before for 3 hours in order to remove Mg 2+ .
- the resin was then pelleted by centrifugation and the reaction was then passed through a 3K MWCO filter (Millipore) to remove protein. The mixture was then lyophilized to yield a white precipitate. The mixture was then suspended in 10 mL of 0.1 M ammonium bicarbonate.
- PiPerTM Assay The PiPer assay (Invitrogen) was carried out according to manufacturer’s instructions. Reactions were carried out as outlined in Prenyltransferase Assays.
- terpene analogues were applied as substrate mimics for the purpose of developing inhibitors.
- bisphosphonate drugs are substrate mimics that are used to target enzymes utilizing pyrophosphorylated substrates.
- Terpene analogues have also been used in a variety of chemical biology studies.
- researchers use farnesyl pyrophosphate analogues that contain Click handles for in vivo studies of protein famesylation which is used to study ubiquitination pathways in cancer.
- terpene analogues have been used to study mechanisms utilized by terpene cyclases.
- fluorinated analogues of substrates for terpene cyclases halt reaction cascade processes by restricting hydride shifts and deprotonation events that may occur in the process of product maturation.
- the platform presented herein provides a means by which a plethora of opportunities to diversify terpenes using a synthetic biology approach can be
- Terpene cyclases afford enormous molecular diversity from relatively simply starting materials. Using carbocationic chemistry, these enzymes elegantly direct complex cascade reactions by navigating high energy intermediates to complex ring structures ( Figure 40). Prior to investigating the ability of these enzymes to use previously generated FPP analogues, confirmation of activity in vivo is needed.
- GC-FID was qualitatively compared to GC-MS for detection limits and signal to noise ( Figures 41A-41B). Using standards, GC-FID, a minimum detection limit of 390 ng/uL was detected using trans- caryophyllene and g- humulene. The precursor diphosphates themselves cannot be detected by GC as the boiling points and stability are not suitable for GC. Together, the best manner for detecting unnatural terpene cyclization would be to first screen for
- Aristolochene synthase was expressed from ATAS. Aristolochene synthase was then tested with synthesized FPP to observe the natural reaction in vitro and products were confirmed by EI-MS using the NIST database.
- analogues may be incorporated into cyclic structures by terpene cyclases, but also may require enzyme engineering for few possible reasons.
- the substrates did not contain the seemingly requisite allylic diphosphate moiety. This would require the engineering of a terpene cyclase capable of directing an intramolecular S N 2 reaction for the release of diphosphate.
- Terpene cyclases have a strict substrate specificity at the head of the diphosphates ( Figure 43). If not limited by energetics, rational engineering may sterically permit analogues in place of the natural substrates.
- hemiterpenes can be appended to a variety of other natural products.
- Meroterpenoids are natural products such as polyketides or non-ribosomal peptides that have been prenylated.
- the prenyl groups often are critical for bioactivity as the prenyl side chains alter ClogP values to increase bioavailability.
- ABBA aromatic prenyltransferases are a class of soluble magnesium-independent enzymes that append prenyl groups to various aromatic prenyl acceptors. These enzymes have been noted for their broad promiscuity in terms of prenyl acceptors, but less so in terms of prenyl donors.
- the hemiterpene production pathway was successfully coupled with FgaPT2 to generate two tryptophan derivatives in vivo. Controls omitting any of the enzymes or substrate did not provide any product consistent with the tryptophan derivatives generated in vitro.
- the hemiterpene production pathway was used with dimethylallyl alcohol, as was done with the carotenoid assay, prenylated tryptophan was observed at twice the concentration of that observed without the artificial pathway. While these vectors were not optimized for in vivo production, analogues were detected nonetheless. Future studies will use compatible vectors to increase analogue production for scale-up, isolation, and structural characterization.
- IspA IspA expression and purification of IspA.
- AT AS plasmid was transformed into E. coli BL21 (DE3) for protein expression.
- a single colony was used to inoculate a 3 mL culture in LB media supplemented with chloramphenicol (35 pg/mL).
- a I L culture containing chloramphenicol (35 pg/mL) in LB media was then inoculated with 1 mL of the overnight culture and grown to an OD600 of -0.6 at 37°C with shaking at 300 rpm at which point protein expression was induced by the addition of 1 mM IPTG.
- the temperature of the incubator- shaker was reduced to 18°C and the culture incubated for approximately 18 hours.
- the culture was pelleted at 4000 rpm for 10 mins, the supernatant was decanted, the cell pellet resuspended in 15 mL of lysis buffer (100 mM TRIS-HCl, 300 mM NaCl, 10% glycerol, pH 8.0) and lysed by sonication.
- the lysate was then pelleted at 4500 rpm for 10 mins, decanted, and the soluble protein was spun down at 15,000 rpm for 1 hour.
- the resulting soluble fraction was then purified by fast protein liquid chromatography (FPLC) using nickel-bead column chromatography for the extraction of His6-tagged proteins.
- FPLC fast protein liquid chromatography
- the column was first equilibrated with wash buffer (50 mM TRIS-HCl, 500 mM NaCl, 20 mM imidazole, pH 8.0) prior to loading of the soluble fraction.
- the soluble fraction was then eluted with elution buffer (50 mM TRIS- HCl, 500 mM NaCl, 200 mM imidazole, pH 8.0) using a gradient of 0% elution buffer 0- 7.5 min., 0- 50% 7.5-18 min., 50-100% 18-22 min., 100% 22-27.5 min, and equilibrated for additional runs with 0% elution buffer 27.5-35 min. Fractions containing the desired protein were identified by SDS-PAGE and pooled.
- the pooled protein was then concentrated using a 10,000 molecular weight cut-off filter (Millipore Amicon-Ultra) and the buffer was exchanged with protein storage buffer (50 mM TRIS-HCl, 100 mM NaCl, and 20% glycerol at pH 8.0). Protein aliquots were flash frozen with a dry ice ethanol bath before storage at - 80°C. Protein purity was confirmed by SDS-PAGE while concentration was determined by absorbance using a Pierce Bradford Protein Assay kit.
- protein storage buffer 50 mM TRIS-HCl, 100 mM NaCl, and 20% glycerol at pH 8.0.
- Reactions of aristolochene synthase were performed in 1.5 mL polypropylene tubes. Reactions were run in volumes of 200 pL overlaid with 200 pL of ethyl acetate. Reactions contained 2.5 mM famesyl pyrophosphate, 2.5 mM MgCh, 25 mM Tris-HCl at pH 7.5, and 7.8 pg of enzyme. Time points were taken by halting the reaction by vortexing the mixture and removing the ethyl acetate layer for subsequent analysis.
- the following data demonstrates the ability of the artificial isoprenoid pathway (PhoN-IPK) to support production of natural isoprenoids (via DMAPP/IPP) and non natural isoprenoids (via various non-natural alkyl-pyrophosphates).
- the PhoN-IPK is coupled to various downstream enzymes (FgaPT2, IspA, CpaD, FtmPTl) to afford a range of compounds.
- PhoN-IPK-FgaPT2 pathway Production of prenylated amino acids in vitro via PhoN-IPK-FgaPT2 pathway. Reactions including purified PhoN, IPK, and FgaPT2 with ATP, DMAA, and Trp were run with initial conditions similar to individual enzyme reactions.
- Buffer was optimized, followed by iterative optimization of substrate and enzyme concentrations. Reactions were followed by HPLC, and percent conversion was calculated in the same manner as FgaPT2 in vitro reactions. The results are shown in Table 8 below.
- compositions, systems, and methods of the appended claims are not limited in scope by the specific compositions, systems, and methods described herein, which are intended as illustrations of a few aspects of the claims. Any compositions, systems, and methods that are functionally equivalent are intended to fall within the scope of the claims. Various modifications of the compositions, systems, and methods in addition to those shown and described herein are intended to fall within the scope of the appended claims. Further, while only certain representative compositions, systems, and method steps disclosed herein are specifically described, other combinations of the components, compositions, systems, and method steps also are intended to fall within the scope of the appended claims, even if not specifically recited. Thus, a combination of steps, elements, components, or constituents may be explicitly mentioned herein or less, however, other combinations of steps, elements, components, and constituents are included, even though not explicitly stated.
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Abstract
Description
Claims
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US201962792523P | 2019-01-15 | 2019-01-15 | |
| PCT/US2020/013663 WO2020150340A1 (en) | 2019-01-15 | 2020-01-15 | Isoprenoids and methods of making thereof |
Publications (2)
| Publication Number | Publication Date |
|---|---|
| EP3911740A1 true EP3911740A1 (en) | 2021-11-24 |
| EP3911740A4 EP3911740A4 (en) | 2023-01-25 |
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| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| EP20741921.9A Pending EP3911740A4 (en) | 2019-01-15 | 2020-01-15 | ISOPRENOIDS AND PROCESS FOR THEIR PRODUCTION |
Country Status (4)
| Country | Link |
|---|---|
| US (1) | US20220162188A1 (en) |
| EP (1) | EP3911740A4 (en) |
| CA (1) | CA3126477A1 (en) |
| WO (1) | WO2020150340A1 (en) |
Families Citing this family (3)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| EP4281570A1 (en) | 2021-01-20 | 2023-11-29 | c-LEcta GmbH | In-vitro synthetic platform for the generation of isoprenoids |
| CN113186183B (en) * | 2021-04-30 | 2023-05-16 | 中国科学院昆明植物研究所 | Difunctional sesterterpene/diterpene synthase LcTPS2, coding gene, product and application thereof |
| WO2023006699A1 (en) * | 2021-07-30 | 2023-02-02 | Københavns Universitet | Cells and method for producing isoprenoid molecules with canonical and non-canonical structures |
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| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US6410755B1 (en) * | 1998-07-06 | 2002-06-25 | Dcv, Inc. | Method of vitamin production |
| DE10201458A1 (en) * | 2001-04-11 | 2002-10-17 | Adelbert Bacher | New proteins involved in isoprenoid biosynthesis, useful in screening for inhibitors, also new intermediates, potential therapeutic agents, nucleic acids and antibodies |
| TW201412988A (en) * | 2009-06-17 | 2014-04-01 | Danisco Us Inc | Improved isoprene production using the dxp and mva pathway |
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2020
- 2020-01-15 CA CA3126477A patent/CA3126477A1/en active Pending
- 2020-01-15 EP EP20741921.9A patent/EP3911740A4/en active Pending
- 2020-01-15 US US17/423,316 patent/US20220162188A1/en active Pending
- 2020-01-15 WO PCT/US2020/013663 patent/WO2020150340A1/en not_active Ceased
Also Published As
| Publication number | Publication date |
|---|---|
| CA3126477A1 (en) | 2020-07-23 |
| EP3911740A4 (en) | 2023-01-25 |
| US20220162188A1 (en) | 2022-05-26 |
| WO2020150340A1 (en) | 2020-07-23 |
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